0000000000037862

AUTHOR

Akimitsu Narita

0000-0002-3625-522x

showing 90 related works from this author

Unexpected Scholl Reaction of 6,7,13,14-Tetraarylbenzo[k]tetraphene: Selective Formation of Five-Membered Rings in Polycyclic Aromatic Hydrocarbons

2016

Cyclodehydrogenation is a versatile reaction that has enabled the syntheses of numerous polycyclic aromatic hydrocarbons (PAHs). We now describe a unique Scholl reaction of 6,7,13,14-tetraarylbenzo[k]tetraphene, which "unexpectedly" forms five-membered rings accompanying highly selective 1,2-shift of aryl groups. The geometric and optoelectronic nature of the resulting bistetracene analogue with five-membered rings is comprehensively investigated by single-crystal X-ray, NMR, UV-vis absorption, and cyclic voltammetry analyses. Furthermore, a possible mechanism is proposed to account for the selective five-membered-ring formation with the rearrangement of the aryl groups, which can be ration…

010405 organic chemistryStereochemistryArylGeneral Chemistry010402 general chemistryHighly selective01 natural sciencesBiochemistryCatalysis0104 chemical sciencesScholl reactionchemistry.chemical_compoundColloid and Surface ChemistrychemistryComputational chemistryDensity functional theoryAbsorption (chemistry)Cyclic voltammetryTetrapheneJournal of the American Chemical Society
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Dicyclopentaannelated Hexa-peri-hexabenzocoronenes with a Singlet Biradical Ground State

2021

Abstract Synthesis of two dicyclopentaannelated hexa‐peri‐hexabenzocoronene (PHBC) regioisomers was carried out, using nonplanar oligoaryl precursors with fluorenyl groups: mPHBC 8 with two pentagons in the “meta”‐configuration was obtained as a stable molecule, while its structural isomer with the “para”‐configuration, pPHBC 16, could be generated and characterized only in situ due to its high chemical reactivity. Both PHBCs exhibit low energy gaps, as reflected by UV‐vis‐NIR absorption and electrochemical measurements. They also show open‐shell singlet ground states according to electron paramagnetic resonance (EPR) measurements and density functional theory (DFT) calculations. The use of…

low energy gapnot-fully benzenoid PAH010402 general chemistryPhotochemistry01 natural sciencesCatalysislaw.inventiondicyclopentaannelationopen-shell biradicallawStructural isomerMoleculeSinglet stateElectron paramagnetic resonance010405 organic chemistryChemistryCommunicationAromaticityGeneral ChemistryCommunications0104 chemical sciencesDensity functional theoryPolycyclic Aromatic Hydrocarbons | Hot Paperhexa-peri-hexabenzocoroneneGround stateAntiaromaticityAngewandte Chemie International Edition
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Dibenzo[hi,st]ovalene as Highly Luminescent Nanographene: Efficient Synthesis via Photochemical Cyclodehydroiodination, Optoelectronic Properties, an…

2019

Dibenzo[hi,st]ovalene (DBOV), as a new nanographene, has demonstrated promising optical properties, such as red emission with a high fluorescence quantum yield of 79% and stimulated emission, as well as high thermal stability and photostability, which indicated its promise as a light-emitting and optical gain material. However, the previous synthetic routes required at least 12 steps. This obstructed access to different derivatives, e.g., to obtain crystals suitable for X-ray diffraction analysis and to tune the optoelectronic properties. Here, we report an efficient synthetic pathway to DBOV based on a sequential iodination-benzannulation of bi(naphthylphenyl)diyne, followed by photochemic…

Photon antibunchingbusiness.industryChemistryQuantum yieldGeneral ChemistryOvalene010402 general chemistryPhotochemistry01 natural sciencesBiochemistryCatalysisFluorescence spectroscopy0104 chemical scienceschemistry.chemical_compoundColloid and Surface ChemistryIntersystem crossingOptoelectronicsStimulated emissionEmission spectrumbusinessSpectroscopyJournal of the American Chemical Society
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π-Extended Pyrene-Fused Double [7]Carbohelicene as a Chiral Polycyclic Aromatic Hydrocarbon

2019

A π-extended double [7]carbohelicene 2 with fused pyrene units was synthesized, revealing considerable intra- and intermolecular π–π interactions as confirmed with X-ray crystallography. As compared to the previous double [7]carbohelicene 1, the π-extended homologue 2 demonstrated considerably red-shifted absorption with an onset at 645 nm (1: 550 nm) corresponding to a smaller optical gap of 1.90 eV (1: 2.25 eV). A broad near-infrared emission from 600 to 900 nm with a large Stokes shift of ∼100 nm (2.3 × 103 cm–1) was recorded for 2, implying formation of an intramolecular excimer upon excitation, which was corroborated with femtosecond transient absorption spectroscopy. Moreover, 2 revea…

General Chemistry010402 general chemistry01 natural sciencesBiochemistryArticleCatalysis0104 chemical sciencesChiral column chromatographysymbols.namesakeCrystallographychemistry.chemical_compoundColloid and Surface ChemistrychemistryStokes shiftIntramolecular forceUltrafast laser spectroscopysymbolsPyreneDensity functional theorySpectroscopyIsomerizationJournal of the American Chemical Society
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Free-Standing Mono layer Two-Dimensional Supramolecular Organic Framework with Good Internal Order

2015

Utilizing dynamic self-assembly and self-sorting to obtain large-area, molecularly precise monolayered structures represents a promising approach toward two-dimensional supramolecular organic frameworks (2D SOF) or 2D supramolecular polymers. So far, related approaches suffer from small domain sizes, fragility and weak long-range internal order. Here we report on the self-assembly of a host-guest enhanced donor-acceptor interaction, consisting of a tris(methoxynaphthyl)-substituted truxene spacer, and a naphthalene diimide substituted with N-methyl viologenyl moieties as donor and acceptor monomers, respectively, in combination with cucurbit[8]uril as host monomer toward monolayers of an un…

chemistry.chemical_classification010405 organic chemistryChemistrySupramolecular chemistryNanotechnologyGeneral Chemistry010402 general chemistry01 natural sciencesBiochemistryAcceptorArticleCatalysis0104 chemical sciencesSupramolecular polymerschemistry.chemical_compoundCrystallographyColloid and Surface ChemistryMonomerTransmission electron microscopyMonolayerMoleculeSolubility
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A Phenylene-Bridged Cyclohexa-meta-phenylene as Hexa-peri-hexabenzocoronene Precursor.

2018

A phenylene-bridged cyclohexa-meta-phenylene was synthesized via intramolecular Yamamoto coupling of an appropriate p-quinquephenyl derivative carrying four m-chlorophenyl substituents. The structural proof could be obtained by single-crystal X-ray diffraction analysis, which also revealed a slightly strained structure with an internal phenylene bridge. Notably, this cyclo-meta-phenylene served as a novel precursor for hexa-peri-hexabenzocoronene (HBC). The cyclodehydrogenation proceeded smoothly, providing the corresponding HBC derivative as confirmed by MALDI-TOF-MS, and UV/Vis spectroscopy.

010405 organic chemistryOrganic ChemistryHexa-peri-hexabenzocoroneneGeneral Chemistry010402 general chemistry01 natural sciencesCatalysis0104 chemical scienceschemistry.chemical_compoundchemistryPhenyleneIntramolecular forcePolymer chemistrySpectroscopyDerivative (chemistry)Chemistry (Weinheim an der Bergstrasse, Germany)
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Polycyclic aromatic chains on metals and insulating layers by repetitive [3+2] cycloadditions

2020

The vast potential of organic materials for electronic, optoelectronic and spintronic devices entails substantial interest in the fabrication of π-conjugated systems with tailored functionality directly at insulating interfaces. On-surface fabrication of such materials on non-metal surfaces remains to be demonstrated with high yield and selectivity. Here we present the synthesis of polyaromatic chains on metallic substrates, insulating layers, and in the solid state. Scanning probe microscopy shows the formation of azaullazine repeating units on Au(111), Ag(111), and h-BN/Cu(111), stemming from intermolecular homo-coupling via cycloaddition reactions of CN-substituted polycyclic aromatic az…

Materials scienceFabricationScienceGeneral Physics and Astronomy02 engineering and technologyConjugated system010402 general chemistry01 natural sciencesArticleGeneral Biochemistry Genetics and Molecular Biologylaw.inventionchemistry.chemical_compoundScanning probe microscopylawDehydrogenationon-surface synthesislcsh:Science13-dipolar cycloadditionschemistry.chemical_classificationMultidisciplinaryalgorithmGrapheneQgrapheneazomethine ylidesGeneral ChemistryPolymer021001 nanoscience & nanotechnologyCycloadditionddc:0104 chemical sciencesCU(111)total-energy calculationschemistryChemical engineeringboron-nitrideBoron nitrideazide-alkyne cycloadditionlcsh:QMaterials chemistrydehalogenation0210 nano-technology
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A Universal Length-Dependent Vibrational Mode in Graphene Nanoribbons

2019

Graphene nanoribbons (GNRs) have attracted considerable interest as their atomically tunable structure makes them promising candidates for future electronic devices. However, obtaining detailed information about the length of GNRs has been challenging and typically relies on low-temperature scanning tunneling microscopy. Such methods are ill-suited for practical device application and characterization. In contrast, Raman spectroscopy is a sensitive method for the characterization of GNRs, in particular for investigating their width and structure. Here, we report on a length-dependent, Raman active low-energy vibrational mode that is present in atomically precise, bottom-up synthesized armch…

530 Physicssubstrate transferSTMFOS: Physical sciencesGeneral Physics and Astronomy02 engineering and technology010402 general chemistryDFT01 natural sciencessymbols.namesakegraphene nanoribbons; Raman spectroscopy; length-dependent mode; STM; substrate transfer; vibrational modes; DFT540 ChemistryMesoscale and Nanoscale Physics (cond-mat.mes-hall)General Materials Sciencevibrational modesCondensed Matter - Materials ScienceCondensed Matter - Mesoscale and Nanoscale Physicsbusiness.industryGeneral EngineeringMode (statistics)Materials Science (cond-mat.mtrl-sci)021001 nanoscience & nanotechnology3. Good health0104 chemical sciencesMolecular vibrationRaman spectroscopysymbols570 Life sciences; biologyOptoelectronicslength-dependent mode0210 nano-technologybusinessRaman spectroscopyGraphene nanoribbonsgraphene nanoribbons
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Bottom-Up, On-Surface-Synthesized Armchair Graphene Nanoribbons for Ultra-High-Power Micro-Supercapacitors

2020

Bottom-up-synthesized graphene nanoribbons (GNRs) with excellent electronic properties are promising materials for energy storage systems. Herein, we report bottom-up-synthesized GNR films employed as electrode materials for micro-supercapacitors (MSCs). The micro-device delivers an excellent volumetric capacitance and an ultra-high power density. The electrochemical performance of MSCs could be correlated with the charge carrier mobility within the differently employed GNRs, as determined by pump–probe terahertz spectroscopy studies.

Supercapacitorbusiness.industryCharge carrier mobilityChemistryCommunicationGeneral Chemistry010402 general chemistryElectrochemistry01 natural sciences7. Clean energyBiochemistryCatalysisEnergy storage0104 chemical sciencesTerahertz spectroscopy and technologyPower (physics)Colloid and Surface ChemistryOptoelectronicsbusinessGraphene nanoribbonsPower densityJournal of the American Chemical Society
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Oligophenyls with Multiple Disulfide Bridges as Higher Homologues of Dibenzo[c,e][1,2]dithiin: Synthesis and Application in Lithium-Ion Batteries.

2020

Abstract Higher homologues of dibenzo[c,e][1,2]dithiin were synthesized from oligophenyls bearing multiple methylthio groups. Single‐crystal X‐ray analyses revealed their nonplanar structures and helical enantiomers of higher meta‐congener 6. Such dibenzo[1,2]dithiin homologues are demonstrated to be applicable to lithium‐ion batteries as cathode, displaying a high capacity of 118 mAh g−1 at a current density of 50 mA g−1.

dibenzo[12]dithiinoligophenylspolycyclesCommunicationOrganic Chemistrylithium-ion batteriesSulfur Heterocycles | Hot Paperchemistry.chemical_elementGeneral ChemistryCatalysisCathodeCommunicationssulfur heterocyclesIonlaw.inventionCrystallographychemistrylawLithiumEnantiomerCurrent densityChemistry (Weinheim an der Bergstrasse, Germany)
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Back Cover: Nanographenes: Ultrastable, Switchable, and Bright Probes for Super‐Resolution Microscopy (Angew. Chem. Int. Ed. 1/2020)

2019

Materials scienceSuper-resolution microscopybusiness.industryOptoelectronicsCover (algebra)General ChemistrybusinessFluorescenceCatalysisAngewandte Chemie International Edition
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Negatively Curved Nanographene with Heptagonal and [5]Helicene Units

2020

Negatively curved nanographene (NG) 4, having two heptagons and a [5]helicene, was unexpectedly obtained by aryl rearrangement and stepwise cyclodehydrogenations. X-ray crystallography confirmed the saddle-shaped structures of intermediate 3 and NG 4. The favorability of rearrangement over helicene formation following radical cation or arenium cation mechanisms is supported by theoretical calculations. NG 4 demonstrates a reversible mechanochromic color change and solid-state emission, presumably benefiting from its loose crystal packing. After resolution by chiral high-performance liquid chromatography, the circular dichroism spectra of enantiomers 4-(P) and 4-(M) were measured and showed …

[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics]CommunicationArylResolution (electron density)General Chemistry010402 general chemistry01 natural sciencesBiochemistryCatalysis0104 chemical sciencesCrystalchemistry.chemical_compoundCrystallographyColloid and Surface ChemistrychemistryRadical ionHelicene[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]Arenium ionHeptagonEnantiomer[PHYS.COND]Physics [physics]/Condensed Matter [cond-mat]ComputingMilieux_MISCELLANEOUS
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Solution and on-surface synthesis of structurally defined graphene nanoribbons as a new family of semiconductors.

2018

Graphene nanoribbons (GNRs) with various structures and properties can be synthesized in solution or on surface.

Materials scienceFabrication010405 organic chemistryGraphenebusiness.industryNanotechnologyGeneral ChemistryChemical vapor depositionCarbon nanotube010402 general chemistry01 natural sciences0104 chemical scienceslaw.inventionChemistryScanning probe microscopySemiconductorZigzaglawbusinessGraphene nanoribbonsChemical science
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Surface-Specific Spectroscopy of Water at a Potentiostatically Controlled Supported Graphene Monolayer

2019

Knowledge of the structure of interfacial water molecules at electrified solid materials is the first step toward a better understanding of important processes at such surfaces, in, e.g., electrochemistry, atmospheric chemistry, and membrane biophysics. As graphene is an interesting material with multiple potential applications such as in transistors or sensors, we specifically investigate the graphene–water interface. We use sum-frequency generation spectroscopy to investigate the pH- and potential-dependence of the interfacial water structure in contact with a chemical vapor deposited (CVD) grown graphene surface. Our results show that the SFG signal from the interfacial water molecules a…

Materials science02 engineering and technologySubstrate (electronics)010402 general chemistryElectrochemistry01 natural sciencesArticlelaw.inventionMembrane biophysicslawSum-frequency generation spectroscopyMoleculePhysical and Theoretical ChemistrySpectroscopyWater interfaceInterfacial water structureGrapheneGraphene layersInterfacial water molecules021001 nanoscience & nanotechnologyChemical vapor deposited3. Good health0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsGeneral EnergyChemical engineeringAtmospheric chemistry0210 nano-technologyMembrane biophysicsLayer (electronics)Potential dependenceThe Journal of Physical Chemistry. C, Nanomaterials and Interfaces
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Stepwise Lateral Extension of Phenyl‐Substituted Linear Polyphenylenes

2019

Polyphenylenes (PPs) are unique polymers showing high mechanical strength and chemical stability, and having potential applications, for example, in proton transfer and gas‐separation membranes. Moreover, phenyl‐substituted linear PPs can serve as precursors for bottom‐up syntheses of graphene nanoribbons (GNRs), a new class of nanoscale carbon materials that appear promising for nanoelectronics. Notably, lateral extensions of linear PPs with appropriate “branched” phenyl substituents, that is, avoiding spatial overlap of benzene rings in their projections into a plane, can lead to wider GNRs with modulated electronic and optical properties. GNRs with widths up to ≈2 nm are obtained, but sy…

MapleMaterials sciencePolymers and Plastics010405 organic chemistryOrganic Chemistry02 engineering and technologyengineering.material021001 nanoscience & nanotechnology010402 general chemistryCondensed Matter Physics01 natural sciences0104 chemical scienceschemistry.chemical_compoundCyclopentadienonechemistryPolymer chemistryMaterials ChemistryLateral extensionengineeringPhysical and Theoretical Chemistry0210 nano-technologyGraphene nanoribbonsMacromolecular Chemistry and Physics
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Nanographene: ultrastabile, schaltbare und helle Sonden für die hochauflösende Mikroskopie

2020

General Medicine
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Photoswitchable Micro-Supercapacitor Based on a Diarylethene-Graphene Composite Film

2017

Stimuli-responsive micro-supercapacitors (MSCs) controlled by external stimuli can enable a wide range of applications for future on-chip energy storage. Here, we report on a photoswitchable MSC based on a diarylethene-graphene composite film. The microdevice delivers an outstanding and reversible capacitance modulation of up to 20%, demonstrating a prototype photoswitchable MSC. Terahertz spectroscopy indicates that the photoswitching of the capacitance is enabled by the reversible tuning of interfacial charge injection into diarylethene molecular orbitals, as a consequence of charge transfer at the diarylethene-graphene interface upon light modulation.

Nanotechnology02 engineering and technology010402 general chemistry01 natural sciencesBiochemistryCapacitanceCatalysisEnergy storagelaw.inventionchemistry.chemical_compoundColloid and Surface ChemistryDiarylethenelawMolecular orbitalSupercapacitorGraphenebusiness.industryGeneral ChemistryPhysik (inkl. Astronomie)021001 nanoscience & nanotechnology0104 chemical sciencesTerahertz spectroscopy and technologychemistryModulationOptoelectronics0210 nano-technologybusinessJournal of the American Chemical Society
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Benzo-Fused Periacenes or Double Helicenes? Different Cyclodehydrogenation Pathways on Surface and in Solution

2019

Controlling the regioselectivity of C-H activation in unimolecular reactions is of great significance for the rational synthesis of functional graphene nanostructures, which are called nanographenes. Here, we demonstrate that the adsorption of tetranaphthyl- p-terphenyl precursors on metal surfaces can completely change the cyclodehydrogenation route and lead to obtaining planar benzo-fused perihexacenes rather than double [7]helicenes during solution synthesis. The course of the on-surface planarization reactions is monitored using scanning probe microscopy, which unambiguously reveals the formation of dibenzoperihexacenes and the structures of reaction intermediates. The regioselective pl…

NanostructureChemistryGrapheneRegioselectivityGeneral ChemistryReaction intermediate010402 general chemistryPhotochemistry01 natural sciencesBiochemistryArticleCatalysisddc:0104 chemical scienceslaw.inventionMetalScanning probe microscopyColloid and Surface ChemistryAdsorptionlawChemical-mechanical planarizationvisual_artvisual_art.visual_art_medium
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Color Sensitive Response of Graphene/Graphene Quantum Dot Phototransistors

2019

We present the fabrication and characterization of all-carbon phototransistors made of graphene three terminal devices, coated with atomically precise graphene quantum dots (GQD). Chemically synthesized GQDs are the light absorbing materials, while the underlying chemical vapor deposition (CVD)-grown graphene layer acts as the charge transporting channel. We investigated three types of GQDs with different sizes and edge structures, having distinct and characteristic optical absorption in the UV–vis range. The photoresponsivity exceeds 106 A/W for vanishingly small incident power (<10–12 W), comparing well with state of the art sensitized graphene photodetectors. More importantly, the photor…

---Materials scienceAbsorption spectroscopybusiness.industryGraphenePhotodetector02 engineering and technologyChemical vapor deposition010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesGraphene quantum dot0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialslaw.inventionResponsivityGeneral EnergyQuantum dotlawOptoelectronicsPhysical and Theoretical Chemistry0210 nano-technologybusinessAbsorption (electromagnetic radiation)
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Synthesis and helical supramolecular organization of discotic liquid crystalline dibenzo[hi,st]ovalene

2019

Dibenzo[hi,st]ovalene (DBOV) has emerged as a new polycyclic aromatic hydrocarbon (PAH) with intriguing optical properties with strong red emission. Nevertheless, DBOV derivatives thus far synthesized either had mesityl groups that hinder the pi-pi stacking of the aromatic cores or showed low solubility, and the self-assembly of DBOVs has not been investigated. In this work, two 3,4,5-tris(dodecyloxy)phenyl (TDOP) groups are introduced at the meso-positions of DBOV in order to enhance its solubility without compromising the intermolecular interactions. The obtained DBOV-TDOP forms at elevated temperatures a discotic liquid crystalline phase. Due to pi-pi-stacking interactions as well as loc…

TechnologyMaterials scienceMaterials ScienceStackingSupramolecular chemistryMaterials Science Multidisciplinary02 engineering and technologyOvalene010402 general chemistry01 natural sciencesPhysics Appliedchemistry.chemical_compoundHighly oriented pyrolytic graphitePhase (matter)Materials ChemistrySide chainCHARGE-TRANSPORTScience & TechnologyBilayerPhysicsHEXA-PERI-HEXABENZOCORONENESGeneral Chemistry021001 nanoscience & nanotechnology0104 chemical sciencesCrystallographychemistryMOBILITYPhysical SciencesAlkoxy groupDISK-LIKE MOLECULES0210 nano-technology
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Amplification of Dissymmetry Factors in π-Extended [7]- and [9]Helicenes

2021

International audience; $\pi$-Extended helicenes constitute an important class of polycyclic aromatic hydrocarbons with intrinsic chirality. Herein, we report the syntheses of $\pi$extended [7]helicene $4$ and $\pi$-extended [9]helicene $6$ through regioselective cyclodehydrogenation in high yields, where a "prefusion" strategy plays a key role in preventing undesirable aryl rearrangements. The unique helical structures are unambiguously confirmed by X-ray crystal structure analysis. Compared to the parent pristine [7]helicene and [9]helicene, these novel $\pi$-extended helicenes display significantly improved photophysical properties, with a quantum yield of 0.41 for $6$. After optical res…

Models MolecularMolecular StructureChemistryArylRegioselectivityQuantum yieldStereoisomerismGeneral ChemistryCrystal structure010402 general chemistry01 natural sciencesBiochemistryArticleCatalysis0104 chemical sciences3. Good healthchemistry.chemical_compoundCrystallographyColloid and Surface ChemistryHelicene[CHIM]Chemical SciencesPolycyclic CompoundsEnantiomerLuminescenceChirality (chemistry)
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Size-dependent electron transfer from atomically defined nanographenes to metal oxide nanoparticles.

2020

Atomically defined nanographenes (NGs) feature size-dependent energy gaps induced by, and tuneable through, quantum confinement. Their energy-tunability and robustness make NGs appealing candidates as active elements in sensitized geometries, where NGs functionalize a metal oxide (MO) film with large-area-to-volume ratio. Despite the prominent relevance of NG/MO interfaces for developing novel architectures for solar energy conversion, to date, little information is available regarding the fundamentals of electron transfer (ET) processes taking place from NG donors to MO acceptors. Here, we analyze the interplay between the size of atomically precise NGs and ET dynamics at NG/MO interfaces.…

Electron transferchemistry.chemical_compoundMaterials sciencechemistryChemical physicsQuantum dotSize dependentOxideSolar energy conversionGeneral Materials ScienceMetal oxide nanoparticlesOverpotentialAcceptorNanoscale
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Rücktitelbild: Nanographene: ultrastabile, schaltbare und helle Sonden für die hochauflösende Mikroskopie (Angew. Chem. 1/2020)

2019

General MedicineAngewandte Chemie
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Regioselective Bromination and Functionalization of Dibenzo[hi,st]ovalene as Highly Luminescent Nanographene with Zigzag Edges.

2019

Dibenzo[hi,st]ovalene (DBOV) is a nanographene with a combination of zigzag and armchair edges, consisting of 38 sp2 carbons. Excellent optical properties with strong red emission have been demonstrated. Here we report the regioselective bromination of DBOV bearing two mesityl groups (DBOV-Mes) by treatment with N-bromosuccinimide (NBS) under mild conditions. The dibrominated DBOV was further subjected to transition-metal-catalyzed cross-coupling reactions, that is, Suzuki and Sonogashira coupling, demonstrating the edge-decoration of DBOV with different functional groups. Notably, DBOVs arylated at the bay regions showed intense red emission and enhanced fluorescence quantum yields of up t…

010405 organic chemistryChemistryOrganic ChemistrySonogashira couplingRegioselectivityHalogenationGeneral ChemistryOvalene010402 general chemistry01 natural sciencesBiochemistryRedox0104 chemical scienceschemistry.chemical_compoundRadical ionPolymer chemistryCyclic voltammetryLuminescenceChemistry, an Asian journal
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Charge transport mechanism in networks of armchair graphene nanoribbons

2020

In graphene nanoribbons (GNRs), the lateral confinement of charge carriers opens a band gap, the key feature to enable novel graphene-based electronics. Successful synthesis of GNRs has triggered efforts to realize field-effect transistors (FETs) based on single ribbons. Despite great progress, reliable and reproducible fabrication of single-ribbon FETs is still a challenge that impedes applications and the understanding of the charge transport. Here, we present reproducible fabrication of armchair GNR-FETs based on a network of nanoribbons and analyze the charge transport mechanism using nine-atom wide and, in particular, five-atom-wide GNRs with unprecedented conductivity. We show formati…

Materials scienceBand gap530 Physicslcsh:MedicineFOS: Physical sciences02 engineering and technology010402 general chemistry01 natural sciencesArticlelaw.inventionlawMesoscale and Nanoscale Physics (cond-mat.mes-hall)lcsh:ScienceCondensed-matter physicsOhmic contactQuantum tunnellingMultidisciplinaryCondensed Matter - Mesoscale and Nanoscale Physicsbusiness.industryGraphenelcsh:RTransistorCharge (physics)021001 nanoscience & nanotechnology530 PhysikMaterials science0104 chemical sciencesOptoelectronicslcsh:QCharge carrier0210 nano-technologybusinessGraphene nanoribbons
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From Hexaphenylbenzene to 1,2,3,4,5,6-Hexacyclohexylcyclohexane

2020

The hydrogenation of hexaphenylbenzene was studied, affording novel partially hydrogenated hexacyclohexylbenzene (HCB) as well as fully hydrogenated 1,2,3,4,5,6-hexacyclohexylcyclohexane (HCC) as an unprecedented “oligocyclohexyl” molecule. The reaction process was analyzed by mass spectrometry with atmospheric pressure chemical ionization and high-performance liquid chromatography. From a crude product mixture, two different crystals with flake- and block-shapes could be grown and analyzed by X-ray crystallography, revealing their structures as HCB and HCC. While a geared arrangement of cyclohexyl substitutes was found in HCB, two isomeric structures were identified in HCC crystal with cha…

CyclohexaneCommunicationAtmospheric-pressure chemical ionizationGeneral ChemistryMass spectrometryBiochemistryCatalysisCrystalchemistry.chemical_compoundCrystallographyColloid and Surface ChemistrychemistryX-ray crystallographyMoleculeHexaphenylbenzeneJournal of the American Chemical Society
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On-Surface Synthesis of Unsaturated Carbon Nanostructures with Regularly Fused Pentagon–Heptagon Pairs

2020

Multiple fused pentagon-heptagon pairs are frequently found as defects at the grain boundaries of the hexagonal graphene lattice and are suggested to have a fundamental influence on graphene-related materials. However, the construction of sp2-carbon skeletons with multiple regularly fused pentagon-heptagon pairs is challenging. In this work, we found that the pentagon-heptagon skeleton of azulene was rearranged during the thermal reaction of an azulene-incorporated organometallic polymer on Au(111). The resulting sp2-carbon frameworks were characterized by high-resolution scanning probe microscopy techniques and feature novel polycyclic architectures composed of multiple regularly fused pen…

ChemistryGraphene530 PhysicsCommunicationAromaticityGeneral ChemistryElectronic structureAzulene010402 general chemistry01 natural sciencesBiochemistryCatalysis0104 chemical scienceslaw.inventionchemistry.chemical_compoundScanning probe microscopyCrystallographyColloid and Surface ChemistrylawLattice (order)540 ChemistryGrain boundaryHeptagonPhysics::Chemical PhysicsJournal of the American Chemical Society
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Protonenvermittelter Ringschluss eines negativ photochromen, Azulen‐basierten Diarylethens

2020

Auf Protonen ansprechende photochrome Moleküle sind aufgrund ihrer Fähigkeit, auf nicht-invasive schnelle optische Stimuli zu reagieren, und wegen der ubiquitären Bedeutung von Protonierungs- und Deprotonierungsprozessen, sehr interessant. Üblicherweise befinden sich die sauren/basischen Stellen dieser Moleküle an Heteroatomen, die orthogonal zum photoaktiven π-Zentrum ausgerichtet sind. In dieser Arbeit wird Azulen, ein protonensensitiver reiner Kohlenwasserstoff, in das Gerüst eines Diarylethen-Photoschalters eingebaut. Dieser zeigt einen bisher ungekannten, protonenvermittelten, negativ photochromen Ringschluss. Veränderungen seiner optischen Eigenschaften durch Protonierung, sowohl in d…

Säure-Base-Gleichgewicht010405 organic chemistryChemistryGeneral Medicine010402 general chemistry01 natural sciences3. Good health0104 chemical sciencesAzulen540 Chemie und zugeordnete WissenschaftenNegative Photochromieddc:540ddc:660PhotochemieDiarylethen
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Dimensional Confinement in Carbon-based Structures - From 3D to 1D

2017

We present an overview of charge transport in selected one-, two- and three-dimensional carbon-based materials with exciting properties. The systems are atomically defined bottom-up synthesized graphene nanoribbons, doped graphene and turbostratic graphene micro-disks, where up to 100 graphene layers are rotationally stacked. For turbostratic graphene we show how this system lends itself to spintronic applications. This follows from the inner graphene layers where charge carriers are protected and thus highly mobile. Doped graphene and graphene nanoribbons offer the possibility to tailor the electronic properties of graphene either by introducing heteroatoms or by confining the system geome…

Materials scienceSpintronicsGrapheneHeteroatomGeneral Physics and Astronomychemistry.chemical_elementNanotechnology02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences7. Clean energy0104 chemical scienceslaw.inventionchemistrylawCharge carrier0210 nano-technologyBilayer grapheneCarbonGraphene nanoribbonsGraphene oxide paperAnnalen der Physik
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Regioselective Hydrogenation of a 60-Carbon Nanographene Molecule toward a Circumbiphenyl Core.

2019

Regioselective peripheral hydrogenation of a nanographene molecule with 60 contiguous sp2 carbons provides unprecedented access to peralkylated circumbiphenyl (1). Conversion to the circumbiphenyl core structure was unambiguously validated by MALDI-TOF mass spectrometry, NMR, FT-IR, and Raman spectroscopy. UV–vis absorption spectra and DFT calculations demonstrated the significant change of the optoelectronic properties upon peripheral hydrogenation. Stimulated emission from 1, observed via ultrafast transient absorption measurements, indicates potential as an optical gain material.

Absorption spectroscopyChemistryCommunicationChemistry (all)RegioselectivityGeneral Chemistry010402 general chemistryMass spectrometryPhotochemistryCatalysis; Chemistry (all); Biochemistry; Colloid and Surface Chemistry01 natural sciencesBiochemistryCatalysis0104 chemical sciencesCatalysissymbols.namesakeColloid and Surface ChemistryUltrafast laser spectroscopysymbolsMoleculeStimulated emissionRaman spectroscopyJournal of the American Chemical Society
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Direct Metal‐Free Chemical Vapor Deposition of Graphene Films on Insulating Substrates for Micro‐Supercapacitors with High Volumetric Capacitance

2019

Direct, metal‐free synthesis of graphene films on insulating substrates in a controlled manner is of great importance for applications in (opto)electronic and energy storage devices. Graphene films are fabricated on fused silica substrates without metal catalyst via chemical vapor deposition (CVD), using propionic acid as a carbon source. Film‐thickness is readily adjustable between 5 and 45 nm by changing the deposition time and flow rate of the precursor, displaying sheet resistance in the range of 0.27–1.86 kΩ□−1. The resulting graphene films are directly integrated into micro‐supercapacitors without film transfer or liquid‐phase processing, and demonstrate ultrahigh operation rates up t…

SupercapacitorMaterials scienceGrapheneEnergy Engineering and Power TechnologyChemical vapor deposition02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences7. Clean energyEnergy storagelaw.invention0104 chemical sciencesChemical engineeringMetal freelawVolumetric capacitanceElectrochemistryElectrical and Electronic Engineering0210 nano-technologyBatteries &amp; Supercaps
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Spiro-fused bis-hexa-peri-hexabenzocoronene.

2018

A spiro-fused hexa-peri-hexabenzocoronene dimer was synthesized, and its physicochemical properties were studied by UV-Vis absorption and emission spectroscopy as well as cyclic voltammetry. Chemical oxidation of SB-HBC afforded its radical cation and dication derivatives, which could be reversibly reduced to the neutral state.

010405 organic chemistryChemistryDimerMetals and AlloysHexa-peri-hexabenzocoroneneGeneral Chemistry010402 general chemistry01 natural sciencesCatalysis0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsDicationchemistry.chemical_compoundRadical ionPolymer chemistryMaterials ChemistryCeramics and CompositesEmission spectrumCyclic voltammetryAbsorption (chemistry)Neutral stateChemical communications (Cambridge, England)
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Chemical Vapor Deposition Synthesis and Terahertz Photoconductivity of Low-Band-Gap N = 9 Armchair Graphene Nanoribbons.

2017

Recent advances in bottom-up synthesis of atomically defined graphene nanoribbons (GNRs) with various microstructures and properties have demonstrated their promise in electronic and optoelectronic devices. Here we synthesized N = 9 armchair graphene nanoribbons (9-AGNRs) with a low optical band gap of ∼1.0 eV and extended absorption into the infrared range by an efficient chemical vapor deposition process. Time-resolved terahertz spectroscopy was employed to characterize the photoconductivity in 9-AGNRs and revealed their high intrinsic charge-carrier mobility of approximately 350 cm2·V-1·s-1.

Band gapInfraredChemistryTerahertz radiationPhotoconductivityNanotechnology02 engineering and technologyGeneral ChemistryChemical vapor depositionPhysik (inkl. Astronomie)010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences7. Clean energyBiochemistryCatalysis0104 chemical sciencesTerahertz spectroscopy and technologyColloid and Surface Chemistry0210 nano-technologyAbsorption (electromagnetic radiation)Graphene nanoribbonsJournal of the American Chemical Society
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Large-Cavity Coronoids with Different Inner and Outer Edge Structures

2020

Coronoids, polycyclic aromatic hydrocarbons with geometrically defined cavities, are promising model structures of porous graphene. Here, we report the on-surface synthesis of C168 and C140 coronoids, referred to as [6]- and [5]coronoid, respectively, using 5,9-dibromo-14-phenylbenzo[m]tetraphene as the precursor. These coronoids entail large cavities (&gt;1 nm) with inner zigzag edges, distinct from their outer armchair edges. While [6]coronoid is planar, [5]coronoid is not. Low-temperature scanning tunneling microscopy/spectroscopy and noncontact atomic force microscopy unveil structural and electronic properties in accordance with those obtained from density functional theory calculation…

Chemistry530 PhysicsPorous grapheneCommunicationAromaticityGeneral ChemistryEdge (geometry)010402 general chemistry01 natural sciencesBiochemistryMolecular physicsCatalysis0104 chemical scienceslaw.inventionColloid and Surface ChemistryPlanarZigzaglaw540 ChemistryDensity functional theoryScanning tunneling microscopeSpectroscopyJournal of the American Chemical Society
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Kinetic Ionic Permeation and Interfacial Doping of Supported Graphene

2019

Due to its outstanding electrical properties and chemical stability, graphene finds widespread use in various electrochemical applications. Although the presence of electrolytes strongly affects its electrical conductivity, the underlying mechanism has remained elusive. Here, we employ terahertz spectroscopy as a contact-free means to investigate the impact of ubiquitous cations (Li+, Na+, K+, and Ca2+) in aqueous solution on the electronic properties of SiO2-supported graphene. We find that, without applying any external potential, cations can shift the Fermi energy of initially hole-doped graphene by ∼200 meV up to the Dirac point, thus counteracting the initial substrate-induced hole dop…

Materials scienceLetterIonic bondingBioengineering02 engineering and technologyElectrolytedopingterahertz spectroscopy7. Clean energylaw.inventionsymbols.namesakeionic permeationlawElectrical resistivity and conductivityDopingGeneral Materials ScienceAqueous solutionGrapheneMechanical EngineeringDopingFermi levelFermi energyGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsChemical physicsTerahertz spectroscopysymbolsGraphene0210 nano-technologyIonic permeation
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Proton‐Gated Ring‐Closure of a Negative Photochromic Azulene‐Based Diarylethene

2020

Abstract Proton‐responsive photochromic molecules are attractive for their ability to react on non‐invasive rapid optical stimuli and the importance of protonation/deprotonation processes in various fields. Conventionally, their acidic/basic sites are on hetero‐atoms, which are orthogonal to the photo‐active π‐center. Here, we incorporate azulene, an acid‐sensitive pure hydrocarbon, into the skeleton of a diarylethene‐type photoswitch. The latter exhibits a novel proton‐gated negative photochromic ring‐closure and its optical response upon protonation in both open and closed forms is much more pronounced than those of diarylethene photoswitches with hetero‐atom based acidic/basic moieties. …

azulenenegative photochromismProtonation010402 general chemistryPhotochemistry01 natural sciencesCatalysischemistry.chemical_compoundPhotochromismDeprotonationDiaryletheneMoleculeMolecular switchphotochemistryPhotoswitch010405 organic chemistryCommunicationPhotoswitchesGeneral ChemistryAzuleneCommunications3. Good health0104 chemical sciences540 Chemie und zugeordnete Wissenschaftenchemistryacid-base equilibriaddc:540diarylethene
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Cover Picture: Direct Metal‐Free Chemical Vapor Deposition of Graphene Films on Insulating Substrates for Micro‐Supercapacitors with High Volumetric …

2019

SupercapacitorMaterials sciencebusiness.industryGrapheneEnergy Engineering and Power TechnologyChemical vapor depositionEnergy storagelaw.inventionMetal freeVolumetric capacitancelawElectrochemistryOptoelectronicsCover (algebra)Electrical and Electronic EngineeringbusinessBatteries &amp; Supercaps
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Optimized substrates and measurement approaches for Raman spectroscopy of graphene nanoribbons

2019

The on-surface synthesis of graphene nanoribbons (GNRs) allows for the fabrication of atomically precise narrow GNRs. Despite their exceptional properties which can be tuned by ribbon width and edge structure, significant challenges remain for GNR processing and characterization. In this contribution, we use Raman spectroscopy to characterize different types of GNRs on their growth substrate and to track their quality upon substrate transfer. We present a Raman-optimized (RO) device substrate and an optimized mapping approach that allows for acquisition of high-resolution Raman spectra, achieving enhancement factors as high as 120 with respect to signals measured on standard SiO2/Si substra…

Fabrication530 PhysicsFOS: Physical sciences02 engineering and technologySubstrate (electronics)01 natural sciencessymbols.namesakeQuality (physics)540 Chemistry0103 physical sciencesRibbon010302 applied physicsCondensed Matter - Materials Sciencebusiness.industryMaterials Science (cond-mat.mtrl-sci)021001 nanoscience & nanotechnologyCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsCharacterization (materials science)Molecular vibrationsymbols570 Life sciences; biologyOptoelectronics0210 nano-technologybusinessRaman spectroscopyGraphene nanoribbons
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Synthesis of Graphene Nanoribbons by Ambient-Pressure Chemical Vapor Deposition and Device Integration

2016

Graphene nanoribbons (GNRs), quasi-one-dimensional graphene strips, have shown great potential for nanoscale electronics, optoelectronics, and photonics. Atomically precise GNRs can be "bottom-up" synthesized by surface-assisted assembly of molecular building blocks under ultra-high-vacuum conditions. However, large-scale and efficient synthesis of such GNRs at low cost remains a significant challenge. Here we report an efficient "bottom-up" chemical vapor deposition (CVD) process for inexpensive and high-throughput growth of structurally defined GNRs with varying structures under ambient-pressure conditions. The high quality of our CVD-grown GNRs is validated by a combination of different …

FabricationBAND-GAPNanotechnologyHETEROJUNCTIONSORGANIC FIELD EFFECT TRANSISTORS02 engineering and technologyChemical vapor deposition010402 general chemistry01 natural sciencesBiochemistryCatalysislaw.inventionColloid and Surface ChemistrylawNanoscopic scaleNANOGRAPHENESPECTROSCOPYbusiness.industryChemistryGrapheneTransistorGeneral Chemistry021001 nanoscience & nanotechnology0104 chemical sciencesgraphene nanoribbon CVD HREELS spectroscopy electronic propertiesGRAPHENE NANORIBBONSPhotonics0210 nano-technologybusinessGraphene nanoribbonsAmbient pressure
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Synthesis of Circumpyrene by Alkyne Benzannulation of Brominated Dibenzo[hi,st]ovalene

2019

A transition-metal catalyzed alkyne benzannulation allowed an unprecedented synthesis of circumpyrene, starting from 3,11-dibromo-6,14-dimesityldibenzo[hi,st]ovalene (DBOV). The circumpyrene was characterized by a combination of NMR, mass spectrometry, and single-crystal X-ray diffraction analysis, revealing its multizigzag-edged structure. Two newly introduced C═C bonds in circumpyrene strongly perturbed the electronic structures of DBOV, as evidenced by increased optical and electrochemical energy gaps. This is in good agreement with an increased number of Clar's sextets as well as a decreased number of π-electrons in the conjugation pathway of circumpyrene, according to anisotropy of the…

chemistry.chemical_classificationChemistryAlkyneGeneral ChemistryOvalene010402 general chemistryMass spectrometry01 natural sciencesBiochemistryElectrochemical energy conversionCatalysis0104 chemical sciencesCatalysisCrystallographychemistry.chemical_compoundColloid and Surface ChemistryAnisotropyElectronic propertiesJournal of the American Chemical Society
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Excited states engineering enables efficient near-infrared lasing in nanographenes

2021

The spectral overlap between stimulated emission (SE) and absorption from dark states (i.e. charges and triplets) especially in the near-infrared (NIR), represents one of the most effective gain loss channel in organic semiconductors. Recently, bottom-up synthesis of atomically precise graphene nanostructures, or nanographenes (NGs), has opened a new route for the development of environmentally and chemically stable materials with optical gain properties. However, also in this case, the interplay between gain and absorption losses has hindered the attainment of efficient lasing action in the NIR. Here, we demonstrate that the introduction of two fluoranthene imide groups to the NG core lead…

NanographenesFísica de la Materia CondensadaProcess Chemistry and Technologymedia_common.quotation_subjectScience programEuropean Regional Development FundPublic administrationOrganic semiconductors photonicsPromotion (rank)Near-infraredMechanics of MaterialsEfficient lasingPolitical scienceFísica AplicadaGeneral Materials ScienceChristian ministryCirculation (currency)Excited states engineeringElectrical and Electronic Engineeringmedia_commonÓptica
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Syntheses and Characterizations of Functional Polycyclic Aromatic Hydrocarbons and Graphene Nanoribbons

2020

In contrast to zero-bandgap graphene, nanostructures of graphene, such as graphene quantum dots (GQDs) and graphene nanoribbons (GNRs) have open bandgaps due to the quantum confinement effect, and are thus highly interesting for semiconductor applications, for example in nanoelectronics and optoelectronics. While conventional methods cannot provide GQDs and GNRs with chemically precise structures, large polycyclic aromatic hydrocarbon (PAH) molecules can be regarded as atomically precise GQDs. Moreover, extension of the PAH synthesis can lead to GNRs with well-defined chemical structures. In this account, we summarize our recent achievements in our synthetic exploration of PAHs and GNRs wit…

Potential wellNanostructure010405 organic chemistryChemistryGrapheneNanotechnologyGeneral Chemistry010402 general chemistry01 natural sciences0104 chemical scienceslaw.inventionlawQuantum dotGraphene nanoribbonsBulletin of the Chemical Society of Japan
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Lateral Fusion of Chemical Vapor Deposited N = 5 Armchair Graphene Nanoribbons

2017

Bottom-up synthesis of low-bandgap graphene nanoribbons with various widths is of great importance for their applications in electronic and optoelectronic devices. Here we demonstrate a synthesis of N = 5 armchair graphene nanoribbons (5-AGNRs) and their lateral fusion into wider AGNRs, by a chemical vapor deposition method. The efficient formation of 10- and 15- AGNRs is revealed by a combination of different spectroscopic methods, including Raman and UV−visnear-infrared spectroscopy as well as by scanning tunneling microscopy. The degree of fusion and thus the optical and electronic properties of the resulting GNRs can be controlled by the annealing temperature, providing GNR films with o…

Annealing (metallurgy)Nanotechnology02 engineering and technologyChemical vapor deposition010402 general chemistryOptoelectronic devicesSpectroscopic analysisCatalysis; Chemistry (all); Biochemistry; Colloid and Surface Chemistry01 natural sciencesBiochemistryCatalysislaw.inventionsymbols.namesakeColloid and Surface ChemistrylawChemical vapor depositionSpectroscopyScanning tunneling microscopyElectronic propertiesFusionChemistryCommunicationChemistry (all)General Chemistry021001 nanoscience & nanotechnologyVapor deposition0104 chemical sciencesElectronic propertiessymbolsScanning tunneling microscopeGraphene0210 nano-technologyRaman spectroscopyGraphene nanoribbonsJournal of the American Chemical Society
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On-Surface Synthesis of Antiaromatic and Open-Shell Indeno[2,1- b ]fluorene Polymers and Their Lateral Fusion into Porous Ribbons

2019

Polycyclic hydrocarbons have received great attention due to their potential role in organic electronics and, for open-shell systems with unpaired electron densities, in spintronics and da-ta storage. However, the intrinsic instability of polyradical hydrocarbons severely limits de-tailed investigations of their electronic structure. Here, we report the on-surface synthesis of conjugated polymers consisting of indeno[2,1-b]fluorene units, which are antiaromatic and open-shell biradicaloids. The observed reaction products, which also include a non-benzenoid porous ribbon arising from lateral fusion of unprotected indeno[2,1-b]fluorene chains, have been characterized via low temperature scann…

Materials science530 PhysicsBand gapFOS: Physical sciencesConjugated systemFluorene010402 general chemistry01 natural sciencesBiochemistryCatalysislaw.inventionchemistry.chemical_compoundColloid and Surface Chemistrylaw540 ChemistryOrganic electronicsCondensed Matter - Materials ScienceSpintronicsMaterials Science (cond-mat.mtrl-sci)General Chemistry0104 chemical sciencesUnpaired electronchemistryChemical physicsScanning tunneling microscopeAntiaromaticityJournal of the American Chemical Society
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Photomodulation of Two-Dimensional Self-Assembly of Azobenzene-Hexa-peri-hexabenzocoronene-Azobenzene Triads

2019

International audience; Achieving exquisite control over self-assembly of functional polycyclic aromatic hydrocarbons (PAH) and nanographene (NG) is essential for their exploitation as active elements in (nano)technological applications. In the framework of our effort to leverage their functional complexity, we designed and synthesized two hexa-peri-hexabenzocoronene (HBC) triads, pAHA and oAHA, decorated with two light-responsive azobenzene moieties at the pseudo-para and ortho positions, respectively. Their photoisomerization in solution is demonstrated by UV–vis absorption. 1H NMR measurements of oAHA suggested 23% of Z-form can be obtained at a photostationary state with UV irradiation …

Technology[CHIM.MATE] Chemical Sciences/Material chemistryGeneral Chemical EngineeringHexa-peri-hexabenzocoronene[CHIM.MATE]Chemical Sciences/Material chemistry02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnologyPhotochemistry01 natural sciences0104 chemical scienceschemistry.chemical_compoundAzobenzenechemistryMaterials ChemistrySelf-assembly0210 nano-technologyddc:600
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On-surface Synthesis of a Chiral Graphene Nanoribbon with Mixed Edge Structure.

2020

Abstract Chiral graphene nanoribbons represent an important class of graphene nanomaterials with varying combinations of armchair and zigzag edges conferring them unique structure‐dependent electronic properties. Here, we describe the on‐surface synthesis of an unprecedented cove‐edge chiral GNR with a benzo‐fused backbone on a Au(111) surface using 2,6‐dibromo‐1,5‐diphenylnaphthalene as precursor. The initial precursor self‐assembly and the formation of the chiral GNRs upon annealing are revealed, along with a relatively small electronic bandgap of approximately 1.6 eV, by scanning tunnelling microscopy and spectroscopy.

Band gapAnnealing (metallurgy)530 Physics010402 general chemistry01 natural sciencesBiochemistrygraphene nanoribbonNanomaterialslaw.inventionlawchiral edge540 Chemistrypolycyclic aromatic hydrocarbonon-surface synthesisSpectroscopyQuantum tunnelling010405 organic chemistryChemistryGraphenescanning tunneling microscopy and spectroscopyCommunicationOrganic ChemistryGeneral ChemistryCommunications0104 chemical sciencesZigzagChemical physics570 Life sciences; biologyGraphene nanoribbonsChemistry, an Asian journal
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Overcoming Steric Hindrance in Aryl‐Aryl Homocoupling via On‐Surface Copolymerization

2019

On-surface synthesis is a unique tool for growing low-dimensional carbon nanomaterials with precise structural control down to the atomic level. This novel approach relies on carefully designed precursor molecules, which are deposited on suitable substrates and activated to ultimately form the desired nanostructures. One of the most applied reactions to covalently interlink molecular precursors is dehalogenative aryl-aryl coupling. Despite the versatility of this approach, many unsuccessful attempts are also known, most of them associated to the poor capability of the activated precursors to couple to each other. Such failure is often related to the steric hindrance between reactants, which…

Steric effectsArylIntermolecular force02 engineering and technologyConjugated system010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesCombinatorial chemistryAtomic and Molecular Physics and Optics0104 chemical sciencesNanomaterialschemistry.chemical_compoundAdsorptionchemistryCovalent bond540 ChemistryCopolymer570 Life sciences; biologyPhysical and Theoretical Chemistry0210 nano-technologyChemPhysChem
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Chemisorption of Atomically Precise 42-Carbon Graphene Quantum Dots on Metal Oxide Films Greatly Accelerates Interfacial Electron Transfer

2019

Graphene quantum dots (GQDs) are emerging as environmentally friendly, low-cost, and highly tunable building blocks in solar energy conversion architectures, such as solar (fuel) cells. Specifically, GQDs constitute a promising alternative for organometallic dyes in sensitized oxide systems. Current sensitized solar cells employing atomically precise GQDs are based on physisorbed sensitizers, with typically limited efficiencies. Chemisorption has been pointed out as a solution to boost photoconversion efficiencies, by allowing improved control over sensitizer surface coverage and sensitizer-oxide coupling strength. Here, employing time-resolved THz spectroscopy, we demonstrate that chemisor…

LetterMaterials scienceGrapheneOxidechemistry.chemical_elementNanotechnology02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceslaw.inventionchemistry.chemical_compoundElectron transferchemistryQuantum dotlawChemisorptionSurface modificationGeneral Materials SciencePhysical and Theoretical Chemistry0210 nano-technologyMesoporous materialCarbonThe Journal of Physical Chemistry Letters
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Nanographenes: Ultrastable, Switchable, and Bright Probes for Super-Resolution Microscopy.

2019

Abstract Super‐resolution fluorescence microscopy has enabled important breakthroughs in biology and materials science. Implementations such as single‐molecule localization microscopy (SMLM) and minimal emission fluxes (MINFLUX) microscopy in the localization mode exploit fluorophores that blink, i.e., switch on and off, stochastically. Here, we introduce nanographenes, namely large polycyclic aromatic hydrocarbons that can also be regarded as atomically precise graphene quantum dots, as a new class of fluorophores for super‐resolution fluorescence microscopy. Nanographenes exhibit outstanding photophysical properties: intrinsic blinking even in air, excellent fluorescence recovery, and sta…

Materials sciencenanographenes010405 organic chemistrySuper-resolution microscopyGrapheneNanotechnologyGeneral ChemistryChromophore010402 general chemistry01 natural sciencesFluorescenceCatalysis0104 chemical scienceslaw.inventionlawQuantum dotSuper‐Resolution ImagingMicroscopyFluorescence microscopechromophoresfluorescenceblinkingResearch Articlessuper-resolution imagingResearch ArticleAngewandte Chemie (International ed. in English)
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A Highly Luminescent Nitrogen-Doped Nanographene as an Acid- and Metal-Sensitive Fluorophore for Optical Imaging.

2021

Dibenzo[hi,st]ovalene (DBOV) has excellent photophysical properties, including strong fluorescence and high ambient stability. Moreover, the optical blinking properties of DBOV have enabled optical super-resolution single-molecule localization microscopy with an imaging resolution beyond the diffraction limit. Various organic and inorganic fluorescent probes have been developed for super-resolution imaging, but those sensitive to pH and/or metal ions have remained elusive. Here, we report a diaza-derivative of DBOV (N-DBOV), synthesized in eight steps with a total yield of 15%. Nitrogen (N)-bearing zigzag edges were formed through oxidative cyclization of amino groups in the last step. UV-v…

IONSFluorophoreNitrogenMetal ions in aqueous solutionIronOvalenePhotochemistryOXIDATIONBiochemistryCatalysisFluorescence spectroscopyArticlechemistry.chemical_compoundColloid and Surface ChemistryMicroscopyFLUORESCENCEFluorescent DyesCONSTRUCTIONMolecular StructureChemistryDERIVATIVESWARPED NANOGRAPHENEGeneral ChemistryFluorescenceNanostructuresLuminescent MeasurementsCHEMOSENSORGraphiteN-HETEROCYCLESCyclic voltammetryAQUEOUS-MEDIUMLuminescenceSYSTEMCopperJournal of the American Chemical Society
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Synthesis of Nonplanar Graphene Nanoribbon with Fjord Edges

2021

As a new family of semiconductors, graphene nanoribbons (GNRs), nanometer-wide strips of graphene, have appeared as promising candidates for next-generation nanoelectronics. Out-of-plane deformation of π-frames in GNRs brings further opportunities for optical and electronic property tuning. Here we demonstrate a novel fjord-edged GNR (FGNR) with a nonplanar geometry obtained by regioselective cyclodehydrogenation. Triphenanthro-fused teropyrene 1 and pentaphenanthro-fused quateropyrene 2 were synthesized as model compounds, and single-crystal X-ray analysis revealed their helically twisted conformations arising from the [5]helicene substructures. The structures and photophysical properties …

Terahertz radiationCrystallography X-RayBiochemistryCatalysislaw.inventionchemistry.chemical_compoundsymbols.namesakeColloid and Surface ChemistrylawSpectroscopy Fourier Transform InfraredPolycyclic CompoundsDensity Functional TheoryPyrenesbusiness.industryGrapheneCommunicationStereoisomerismGeneral ChemistryNanostructuresSemiconductorHelicenechemistryNanoelectronicsChemical physicssymbolsDensity functional theoryGraphitebusinessRaman spectroscopyGraphene nanoribbons
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Hysteresis in graphene nanoribbon field-effect devices

2020

Hysteresis in the current response to a varying gate voltage is a common spurious effect in carbon-based field effect transistors. Here, we use electric transport measurements to probe the charge transport in networks of armchair graphene nanoribbons with a width of either 5 or 9 carbon atoms, synthesized in a bottom-up approach using chemical vapor deposition. Our systematic study on the hysteresis of such graphene nanoribbon transistors, in conjunction with temperature-dependent transport measurements shows that the hysteresis can be fully accounted for by trapping/detrapping carriers in the SiO2 layer. We extract the trap densities and depth, allowing us to identify shallow traps as the …

Materials scienceCondensed matter physicsGrapheneTransistorGeneral Physics and AstronomyField effect02 engineering and technologyTrappingChemical vapor deposition010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceslaw.inventionCondensed Matter::Materials ScienceHysteresislawField-effect transistorPhysical and Theoretical Chemistry0210 nano-technologyGraphene nanoribbonsPhysical Chemistry Chemical Physics
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On-Surface Synthesis of Dibenzohexacenohexacene and Dibenzopentaphenoheptaphene

2021

We report the on-surface synthesis and gas-phase theoretical studies of two novel nanographenes, namely, dibenzohexacenohexacene and dibenzopentaphenoheptaphene, using 8,8′-dibromo-5,5′-bibenzo[rst]pentaphene as a precursor. These nanographenes display a combination of armchair and zigzag edges, as shown by noncontact atomic force microscopy (nc-AFM), and their electronic properties are elucidated by density functional theory (DFT) calculations which reveal relatively low HOMO-LUMO energy gaps of about 1.75 eV.

Surface (mathematics)chemistry.chemical_classificationchemistry010405 organic chemistryComputational chemistryPolycyclic aromatic hydrocarbonPolycyclicaromatichydrocarbonOn-surfacesynthesisGeneral Chemistry010402 general chemistry01 natural sciencesNanographene0104 chemical sciencesBulletin of the Chemical Society of Japan
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On-Surface Synthesis of Oligo(indenoindene)

2020

Fully conjugated ladder polymers (CLP) possess unique optical and electronic properties, and are considered promis-ing materials for applications in (opto)electronic devices. Poly(indenoindene) is a CLP consisting of an alternating array of five- and six-membered rings, which has remained elusive so far. Here, we report an on-surface synthesis of oligo(indenoindene) on Au(111). Its structure and a low elec-tronic bandgap have been elucidated by low-temperature scanning tunneling microscopy and spectroscopy and non-contact atomic force microscopy, complemented by density functional theory calculations. Achieving defect-free seg-ments of oligo(indenoindene) offers an exclusive insight into th…

chemistry.chemical_classificationBand gapAtomic force microscopy530 PhysicsElectronic bandNanotechnologyGeneral ChemistryPolymerConjugated system010402 general chemistry01 natural sciencesBiochemistryCatalysis0104 chemical scienceslaw.inventionColloid and Surface Chemistrychemistrylaw540 ChemistryDensity functional theoryScanning tunneling microscopeSpectroscopy
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Optical Imaging and Spectroscopy of Atomically Precise Armchair Graphene Nanoribbons

2019

We report the optical imaging and absorption spectroscopy on atomically precise armchair graphene nanoribbons (GNRs) on insulating fused silica substrates. This is achieved by controlling light polarization on macroscopically aligned GNRs which greatly enhances the optical contrast of the submonolayer GNRs on the insulating substrates. We measure the linear absorption spectra of 7-armchair and 9-armchair GNRs in this study, and the experimental data agree qualitatively with ab inito calculation results. The polarization spectroscopy technique enables an unambiguous optical identification of GNRs and provides a rapid tool to characterize the transferred film over a large area.

Optical contrastAbsorption spectroscopy530 Physicsbusiness.industryMechanical EngineeringBioengineering02 engineering and technologyGeneral Chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsPolarization (waves)Optical imaging540 Chemistry570 Life sciences; biologyOptoelectronicsGeneral Materials ScienceOptical identification0210 nano-technologybusinessSpectroscopyAb initoGraphene nanoribbonsNano Letters
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CCDC 1910693: Experimental Crystal Structure Determination

2020

Related Article: Christoph Sonnenschein, Christopher P. Ender, Faxing Wang, Dieter Schollmeyer, Xinliang Feng, Akimitsu Narita, Klaus Müllen|2020|Chem.-Eur.J.|26|8007|doi:10.1002/chem.202000728

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters44'-dibromo-22'55'-tetrakis(methylsulfanyl)-11'-biphenylExperimental 3D Coordinates
researchProduct

CCDC 1910690: Experimental Crystal Structure Determination

2020

Related Article: Christoph Sonnenschein, Christopher P. Ender, Faxing Wang, Dieter Schollmeyer, Xinliang Feng, Akimitsu Narita, Klaus Müllen|2020|Chem.-Eur.J.|26|8007|doi:10.1002/chem.202000728

Space GroupCrystallographyCrystal System22'-bis(methylsulfanyl)-11'-biphenylCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 2047542: Experimental Crystal Structure Determination

2021

Related Article: Zijie Qiu, Cheng-Wei Ju, Lucas Frédéric, Yunbin Hu, Dieter Schollmeyer, Grégory Pieters, Klaus Müllen, Akimitsu Narita|2021|J.Am.Chem.Soc.|143|4661|doi:10.1021/jacs.0c13197

2124-di-t-butyldibenzo[fgij]phenanthro[3'4':910]pyreno[54321-pqrst]naphtho[12-a]pentapheneSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1852851: Experimental Crystal Structure Determination

2019

Related Article: Qiang Chen, Stefan Thoms, Sven Stöttinger, Dieter Schollmeyer, Klaus Müllen, Akimitsu Narita, Thomas Basché|2019|J.Am.Chem.Soc.|141|16439|doi:10.1021/jacs.9b08320

Space GroupCrystallography614-bis(26-dimethylphenyl)dibenzo[hist]ovalene unknown solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 2004421: Experimental Crystal Structure Determination

2020

Related Article: Zijie Qiu, Sobi Asako, Yunbin Hu, Cheng-Wei Ju, Thomas Liu, Loïc Rondin, Dieter Schollmeyer, Jean-Sébastien Lauret, Klaus Müllen, Akimitsu Narita|2020|J.Am.Chem.Soc.|142|14814|doi:10.1021/jacs.0c05504

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters1823-di-t-butyl-1213-ethenocyclohepta[uvwxyz]dibenzo[45:67]cyclohepta[123-gh]phenanthro[9101-jkl]hexahelicene dichloromethane solvateExperimental 3D Coordinates
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CCDC 1428696: Experimental Crystal Structure Determination

2016

Related Article: Junzhi Liu, Akimitsu Narita, Silvio Osella, Wen Zhang, Dieter Schollmeyer, David Beljonne, Xinliang Feng, and Klaus Müllen|2016|J.Am.Chem.Soc.|138|2602|doi:10.1021/jacs.5b10399

Space GroupCrystallographyCrystal SystemCrystal Structure21114-tri-t-butyl-21c-(4-t-butylphenyl)-1722-diiodo-65-(metheno)benzo[56]indeno[4321-cdef]indeno[21-a]tetraphenylen-16d(21cH)-ol dichloromethane unknown solvateCell ParametersExperimental 3D Coordinates
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CCDC 2021698: Experimental Crystal Structure Determination

2020

Related Article: Ashok Keerthi, Carlos Sánchez‐Sánchez, Okan Deniz, Pascal Ruffieux, Dieter Schollmeyer, Xinliang Feng, Akimitsu Narita, Roman Fasel, Klaus Müllen|2020|Chem.Asian J.|15|3807|doi:10.1002/asia.202001008

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters26-dibromo-15-diphenylnaphthaleneExperimental 3D Coordinates
researchProduct

CCDC 2021692: Experimental Crystal Structure Determination

2020

Related Article: Zijie Qiu, Sobi Asako, Yunbin Hu, Cheng-Wei Ju, Thomas Liu, Loïc Rondin, Dieter Schollmeyer, Jean-Sébastien Lauret, Klaus Müllen, Akimitsu Narita|2020|J.Am.Chem.Soc.|142|14814|doi:10.1021/jacs.0c05504

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters1823-di-t-butyl-1213-ethenocyclohepta[uvwxyz]dibenzo[45:67]cyclohepta[123-gh]phenanthro[9101-jkl]hexahelicene tetrahydrofuran solvateExperimental 3D Coordinates
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CCDC 1910691: Experimental Crystal Structure Determination

2020

Related Article: Christoph Sonnenschein, Christopher P. Ender, Faxing Wang, Dieter Schollmeyer, Xinliang Feng, Akimitsu Narita, Klaus Müllen|2020|Chem.-Eur.J.|26|8007|doi:10.1002/chem.202000728

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters2-[5-bromo-24-bis(methylsulfanyl)phenyl]-4455-tetramethyl-132-dioxaborolaneExperimental 3D Coordinates
researchProduct

CCDC 2047540: Experimental Crystal Structure Determination

2021

Related Article: Zijie Qiu, Cheng-Wei Ju, Lucas Frédéric, Yunbin Hu, Dieter Schollmeyer, Grégory Pieters, Klaus Müllen, Akimitsu Narita|2021|J.Am.Chem.Soc.|143|4661|doi:10.1021/jacs.0c13197

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters69-di-t-butyl-114-bis(naphthalen-2-yl)tribenzo[fgijrst]pentaphene chloroform solvate hydrateExperimental 3D Coordinates
researchProduct

CCDC 1914718: Experimental Crystal Structure Determination

2019

Related Article: Yunbin Hu, Giuseppe M. Paternò, Xiao-Ye Wang, Xin-Chang Wang, Michele Guizzardi, Qiang Chen, Dieter Schollmeyer, Xiao-Yu Cao, Giulio Cerullo, Francesco Scotognella, Klaus Müllen, Akimitsu Narita|2019|J.Am.Chem.Soc.|141|12797|doi:10.1021/jacs.9b05610

Space GroupCrystallographypyrene-fused double [7]carbohelicene methanedithione solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 2004419: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters22'-(2'3'-bis(4-(t-butyl)phenyl)-[11':4'1''-terphenyl]-22''-diyl)-dinaphthalene chloroform solvateExperimental 3D Coordinates
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CCDC 1980964: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal Structure44''-dibromo-2'35'-trimethyl-11':4'1''-terphenylCell ParametersExperimental 3D Coordinates
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CCDC 2047541: Experimental Crystal Structure Determination

2021

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Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters2023-di-t-butyldibenzo[56:78]pentapheno[1141312-ijklmno]heptahelicene chloroform solvateExperimental 3D Coordinates
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CCDC 2058017: Experimental Crystal Structure Determination

2021

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Space GroupCrystallographyCrystal System2811172023-hexa-tert-butyldibenzo[a1b1vw]dibenzo[56:78]pentapheno[2114131211-fghijklmn]heptaphene dichloromethane unknown solvateCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1428694: Experimental Crystal Structure Determination

2016

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Space GroupCrystallographyCrystal SystemCrystal Structure716-di-t-butyl-514-bis(4-t-butylphenyl)dibenzo[am]rubicene unknown solvateCell ParametersExperimental 3D Coordinates
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CCDC 1910694: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal Structure12242632-tetrakis(methylsulfanyl)-1121:2331-terphenylCell ParametersExperimental 3D Coordinates
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CCDC 1910692: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal Structure55'-dibromo-22'44'-tetrakis(methylsulfanyl)-11'-biphenylCell ParametersExperimental 3D Coordinates
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CCDC 2000869: Experimental Crystal Structure Determination

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Space GroupCrystallography123456-hexacyclohexylcyclohexaneCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 1427947: Experimental Crystal Structure Determination

2016

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671314-tetrakis(4-t-butylphenyl)-512-diiodobenzo[k]tetraphene dichloromethane solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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2020

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Space GroupCrystallographydibenzo[ee']benzo[12-c:54-c']bis[12]dithiineCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 2058018: Experimental Crystal Structure Determination

2021

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Space GroupCrystallography4;4'13;13'16;16'-bis(25111417-penta-tert-butyl-1316-dihydro-4H-benzo[hi]benzo[56]tetraceno[21121110-qrstuva]naphtho[321-de]pentacene) unknown solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 2004420: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal Structure3-t-butyl-24-(4-t-butylphenyl)-2223-(metheno)dibenzo[bgh]benzo[67]pleiadeno[321-no]pleiadene chloroform solvateCell ParametersExperimental 3D Coordinates
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CCDC 1910698: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal Systembenzo[34][12]benzodithiino[76-c][12]benzodithiino[43-g][12]benzodithiineCrystal StructureCell ParametersExperimental 3D Coordinates
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CCDC 2000868: Experimental Crystal Structure Determination

2020

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CCDC 1521825: Experimental Crystal Structure Determination

2016

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Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters4-(611-dibromo-14-diphenyl-3-(thiophen-3-yl)triphenylen-2-yl)pyridineExperimental 3D Coordinates
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2016

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Space GroupCrystallographyCrystal SystemCrystal Structure816-di-t-butyl-9b14-bis(4-t-butylphenyl)dibenzo[am]rubicen-5(9bH)-one unknown solvateCell ParametersExperimental 3D Coordinates
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CCDC 1848515: Experimental Crystal Structure Determination

2018

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Space GroupCrystallography11'-spiro-bi-(581114-tetra-t-butyl-1H-tetrabenzo[efhiklno]fluoreno[3456-qrabc]coronene) n-pentane solvateCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
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2019

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Space GroupCrystallographyCrystal SystemCrystal Structure1429-bis(35-di-t-butylphenyl)nonacyclo[14.14.6.23235.126.1711.11721.12226.01236.02731]dotetraconta-1(31)2(42)357(41)81012(36)131517(40)182022(39)23252729323437-henicosaene unknown solvateCell ParametersExperimental 3D Coordinates
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researchProduct

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benzo[a]dinaphtho[218-cde:1'2'3'4'-ghi]perylene-514-dicarbaldehyde acetonitrile solvateSpace GroupCrystallographyCrystal SystemCrystal StructureCell ParametersExperimental 3D Coordinates
researchProduct

CCDC 1903872: Experimental Crystal Structure Determination

2019

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Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameters44''-dibromo-4'6'-dimethyl-11':3'1''-terphenylExperimental 3D Coordinates
researchProduct

CCDC 1946099: Experimental Crystal Structure Determination

2020

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Space GroupCrystallographyCrystal SystemCrystal Structure12910-tetraphenyl-513-bis(246-trimethylphenyl)dinaphtho[2187-hijk:2'1'8'7'-stuv]ovalene carbon disulfide solvateCell ParametersExperimental 3D Coordinates
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