0000000001303451

AUTHOR

Sébastien Bonhommeau

showing 13 related works from this author

Selective Photoswitching of the Binuclear Spin Crossover Compound{[Fe(bt)(NCS)2]2(bpm)}into Two Distinct Macroscopic Phases

2005

The low-spin (LS-LS, $S=0$) diamagnetic form of the binuclear spin crossover complex ${[\mathrm{Fe}(\mathrm{bt})(\mathrm{NCS}{)}_{2}{]}_{2}(\mathrm{bpm})}$ was selectively photoconverted into two distinct macroscopic phases at different excitation wavelengths (1342 or 647.1 nm). These long-lived metastable phases have been identified, respectively, as the symmetry-broken paramagnetic form (HS-LS, $\mathrm{S}=2$) and the antiferromagnetically coupled (HS-HS, $S=0$) high-spin form of the compound. The selectivity may be explained by the strong coupling of the primary excited states to the paramagnetic state.

CrystallographyParamagnetismMaterials scienceCondensed matter physicsSpin crossoverMetastabilityExcited stateStrong couplingGeneral Physics and AstronomyDiamagnetismCondensed Matter::Strongly Correlated ElectronsSelectivityExcitationPhysical Review Letters
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Titelbild: One Shot Laser Pulse Induced Reversible Spin Transition in the Spin-Crossover Complex [Fe(C4H4N2){Pt(CN)4}] at Room Temperature (Angew. Ch…

2005

One shotNuclear magnetic resonanceChemistrySpin crossoverlawSpin transitionGeneral MedicineAtomic physicsLaserPulse (physics)law.inventionAngewandte Chemie
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Cover Picture: One Shot Laser Pulse Induced Reversible Spin Transition in the Spin-Crossover Complex [Fe(C4H4N2){Pt(CN)4}] at Room Temperature (Angew…

2005

Phase transitionOne shotChemistrySpin transitionGeneral ChemistryLaserCatalysisPulse (physics)law.inventionsymbols.namesakeNuclear magnetic resonancelawSpin crossoversymbolsCover (algebra)Atomic physicsRaman spectroscopyAngewandte Chemie International Edition
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Room-Temperature Magnetic Bistability in a Salt of Organic Radical Ions

2021

International audience; Cocrystallization of 7,7′,8,8′-tetracyanoquinodimethane radical anion (TCNQ −•) and 3-methylpyridinium-1,2,3,5dithiadiazolyl radical cation (3-MepyDTDA +•) afforded isostructural acetonitrile (MeCN) or propionitrile (EtCN) solvates containing cofacial π dimers of homologous components. Loss of lattice solvent from the diamagnetic solvates above 366 K affords a high-temperature paramagnetic phase containing discrete TCNQ −• and weakly bound π dimers of 3-MepyDTDA +• , as evidenced by X-ray diffraction methods and magnetic susceptibility measurements. Below 268 K, a first-order phase transition occurs, leading to a low-temperature diamagnetic phase with TCNQ −• σ dimer…

magneettiset ominaisuudetDimer02 engineering and technologyGeneral Chemistry[CHIM.MATE]Chemical Sciences/Material chemistry010402 general chemistry021001 nanoscience & nanotechnologyvapaat radikaalit01 natural sciencesBiochemistryTetracyanoquinodimethaneMagnetic susceptibilityCatalysis0104 chemical scienceschemistry.chemical_compoundParamagnetismCrystallographyColloid and Surface ChemistryRadical ionchemistryDiamagnetismPropionitrileIsostructural0210 nano-technologyorgaaniset yhdisteet
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Spin Crossover Metal-Organic Frameworks with Inserted Photoactive Guests: On the Quest to Control the Spin State by Photoisomerization

2021

International audience; Three Hofmann-like metal-organic frameworks {Fe(bpac)[Pt(CN)4]}•G (bpac=1,2-bis(4-pyridyl)acetylene) were synthesized with photoisomerizable guest molecules (G = trans-azobenzene, trans-stilbene or cis-stilbene) and were characterized by elemental analysis, thermogravimetry and powder X-ray diffraction. The insertion of guest molecules and their conformation were inferred from Raman and FTIR spectra and from single-crystal X-ray diffraction and confronted with computational simulation. The magnetic and photomagnetic behaviors of the framework are significantly altered by the different guest molecules and different conformations. On the other hand, photoisomerization …

Materials scienceSpin statesPhotoisomerization02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesInorganic ChemistryThermogravimetryCrystallographychemistry.chemical_compoundsymbols.namesakeAcetylenechemistrySpin crossoversymbols[CHIM.CRIS]Chemical Sciences/CristallographyMoleculeMetal-organic framework[CHIM.COOR]Chemical Sciences/Coordination chemistry0210 nano-technologyRaman spectroscopy
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One Shot Laser Pulse Induced Reversible Spin Transition in the Spin-Crossover Complex [Fe(C4H4N2){Pt(CN)4}] at Room Temperature

2005

One shotPhase transitionChemistrySpin transitionAnalytical chemistryGeneral ChemistryGeneral MedicineLaserCatalysisPulse (physics)law.inventionsymbols.namesakeSpin crossoverlawsymbolsAtomic physicsRaman spectroscopyAngewandte Chemie
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Synthesis, crystal structures, and solid state quadratic nonlinear optical properties of a series of stilbazolium cations combined with gold cyanide …

2011

Three salts built up from (E)-4′-(dimethylamino)-stilbazolium (DMAS)H+, (E)-4′-(diethylamino)-stilbazolium (DEAS)H+, (E)-4′-{2-(methoxymethyl) pyrrolidinyl}-stilbazolium (MPS)H+, and gold cyanide as a counter-ion, are reported. The crystal structures have been solved for (DEAS)H+ Au(CN)2− (Cc space group), and for (MPS)H+ Au(CN)2− (P1 space group). The semi-empirical (ZINDO) calculated static hyperpolarizability (β0) of (MPS)H+ is equal to 147 × 10−30 cm5esu−1, in solid state, which is 25% higher than that of the cation of the well known (E)-4′-(dimethylamino)-methylstilbazolium tosylate (DAST). (MPS)H+ Au(CN)2− exhibits a unique crystal structure in which the cations are perfectly aligned.…

chemistry.chemical_classificationSeries (mathematics)Gold cyanidationChemistrySolid-stateHyperpolarizabilityGeneral ChemistryCrystal structureNonlinear opticalCrystallographyComputational chemistryMaterials ChemistryZINDOCounterionJournal of Materials Chemistry
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Magnetism and Molecular Nonlinear Optical Second-Order Response Meet in a Spin Crossover Complex

2012

International audience; The quadratic hyperpolarizability of two inorganic Schiff base metal complexes which differ from each other by the nature of the central metal ion (FeII or ZnII) is estimated using hyper-Rayleigh light-scattering (HRS) measurements. The investigated FeII microcrystals exhibit a thermal spin-crossover (SCO) from a diamagnetic to a paramagnetic state centered at T1/2 = 233 K that can be reproduced by the HRS signal whose modest intensity is mainly due to their centrosymmetric packing structure. Diamagnetic ZnII microcrystals even lead to much weaker (∼400 times) HRS intensities which are in addition temperature-independent. These observations allow us to ascribe the ch…

MagnetismHyperpolarizability02 engineering and technology010402 general chemistry01 natural sciencesMolecular physicsMetalParamagnetismchemistry.chemical_compoundNuclear magnetic resonanceSpin crossover[CHIM.COOR]Chemical Sciences/Coordination chemistryPhysical and Theoretical ChemistrySchiff basebusiness.industry021001 nanoscience & nanotechnology0104 chemical sciencesSurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsGeneral Energychemistryvisual_artvisual_art.visual_art_mediumDiamagnetismPhotonics0210 nano-technologybusiness
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Metal-organic magnets with large coercivity and ordering temperatures up to 242°C.

2020

International audience; Magnets derived from inorganic materials (e.g., oxides, rare-earth–based, and intermetallic compounds) are key components of modern technological applications. Despite considerable success in a broad range of applications, these inorganic magnets suffer several drawbacks, including energetically expensive fabrication, limited availability of certain constituent elements, high density, and poor scope for chemical tunability. A promising design strategy for next-generation magnets relies on the versatile coordination chemistry of abundant metal ions and inexpensive organic ligands. Following this approach, we report the general, simple, and efficient synthesis of light…

FabricationMaterials sciencemagneettiset ominaisuudetPyrazineMetal ions in aqueous solutionmagneetitIntermetallicNanotechnology02 engineering and technologyorganometalliyhdisteet010402 general chemistrylarge coercivity7. Clean energy01 natural sciencesordering temperaturesCoordination complexchemistry.chemical_compoundMoleculechemistry.chemical_classificationMultidisciplinarymetal-organic magnets[CHIM.MATE]Chemical Sciences/Material chemistrykompleksiyhdisteetCoercivity021001 nanoscience & nanotechnologykiteet0104 chemical scienceschemistryMagnetlämpötila0210 nano-technologyScience (New York, N.Y.)
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CCDC 2042717: Experimental Crystal Structure Determination

2021

Related Article: Barbora Brachňaková, Ján Moncoľ, Ján Pavlik, Ivan Šalitroš, Sébastien Bonhommeau, Francisco Javier Valverde-Muñoz, Lionel Salmon, Gábor Molnár, Lucie Routaboul, Azzedine Bousseksou|2021|Dalton Trans.|50|8877|doi:10.1039/D1DT01057C

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameterscatena-[tetrakis(mu-cyano)-(mu-44'-(ethene-12-diyl)dipyridine)-iron-platinum trans-azobenzene]Experimental 3D Coordinates
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CCDC 1983877: Experimental Crystal Structure Determination

2020

Related Article: Panagiota Perlepe, Itziar Oyarzabal, Aaron Mailman, Morgane Yquel, Mikhail Platunov, Iurii Dovgaliuk, Mathieu Rouzières, Philippe Négrier, Denise Mondieig, Elizaveta A. Suturina, Marie-Anne Dourges, Sébastien Bonhommeau, Rebecca A. Musgrave, Kasper S. Pedersen, Dmitry Chernyshov, Fabrice Wilhelm, Andrei Rogalev, Corine Mathonière, Rodolphe Clérac|2020|Science|6516|587|doi:10.1126/science.abb3861

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameterscatena-[lithium chloride bis(mu-pyrazine radical cation)-chromium(ii) tetrahydrofuran solvate]Experimental 3D Coordinates
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CCDC 2042716: Experimental Crystal Structure Determination

2021

Related Article: Barbora Brachňaková, Ján Moncoľ, Ján Pavlik, Ivan Šalitroš, Sébastien Bonhommeau, Francisco Javier Valverde-Muñoz, Lionel Salmon, Gábor Molnár, Lucie Routaboul, Azzedine Bousseksou|2021|Dalton Trans.|50|8877|doi:10.1039/D1DT01057C

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameterscatena-[tetrakis(mu-cyano)-(mu-44'-(ethene-12-diyl)dipyridine)-iron-platinum trans-azobenzene]Experimental 3D Coordinates
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CCDC 2007863: Experimental Crystal Structure Determination

2020

Related Article: Panagiota Perlepe, Itziar Oyarzabal, Aaron Mailman, Morgane Yquel, Mikhail Platunov, Iurii Dovgaliuk, Mathieu Rouzières, Philippe Négrier, Denise Mondieig, Elizaveta A. Suturina, Marie-Anne Dourges, Sébastien Bonhommeau, Rebecca A. Musgrave, Kasper S. Pedersen, Dmitry Chernyshov, Fabrice Wilhelm, Andrei Rogalev, Corine Mathonière, Rodolphe Clérac|2020|Science|6516|587|doi:10.1126/science.abb3861

Space GroupCrystallographyCrystal SystemCrystal StructureCell Parameterscatena-[lithium chloride bis(mu-pyrazine radical cation)-chromium(ii) tetrahydrofuran solvate]Experimental 3D Coordinates
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