Search results for " tunnel"

showing 10 items of 477 documents

STM evidence of room-temperature charge instabilities inNbSe3

1996

${\mathrm{NbSe}}_{3}$ is a quasi-low-dimensional compound with unique properties. Two incommensurate charge-density waves appear at low temperatures, which slide under the application of an electric field. The mechanism of sliding is not fully understood and it was speculated that precursor effects may be present above the onset temperatures. Scanning tunneling microscopy offers a unique tool to search for such charge instabilities and clear evidence is given for their existence at room temperature. \textcopyright{} 1996 The American Physical Society.

Materials scienceCondensed matter physicslawElectric fieldCharge (physics)Scanning tunneling microscopelaw.inventionPhysical Review B
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Electron quantization in arbitrarily shaped gold islands on MgO thin films

2013

Low-temperature scanning tunneling microscopy has been employed to analyze the formation of quantum well states (QWS) in two-dimensional gold islands, containing between 50 and 200 atoms, on MgO thin films. The energy position and symmetry of the eigenstates are revealed from conductance spectroscopy and imaging. The majority of the QWS originates from overlapping Au 6p orbitals in the individual atoms and is unoccupied. Their characteristic is already reproduced with simple particle-in-a-box models that account for the symmetry of the islands (rectangular, triangular, or linear). However, better agreement is achieved when considering the true atomic structure of the aggregates via a densit…

Materials scienceCondensed matter physicsta114ElectronCondensed Matter PhysicsElectronic Optical and Magnetic Materialslaw.inventionQuantization (physics)Atomic orbitallawQuantum dotMolecular orbitalScanning tunneling microscopeThin filmSpectroscopy
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Binding Behavior of Carbonmonoxide to Gold Atoms on Ag(001)

2020

AbstractThe adsorption behavior of single CO molecules at 4 K bound to Au adatoms on a Ag(001) metal surface is studied with scanning tunneling microscopy (STM) and inelastic electron tunneling spectroscopy (IETS). In contrast to earlier observations two different binding configurations are observed—one on top of a Au adatom and the other one adsorbed laterally to Au on Ag(001). Moreover, IETS reveals different low-energy vibrational energies for the two binding sites as compared to the one for a single CO molecule bound to Ag(001). Density functional theory (DFT) calculations of the adsorption energies, the diffusion barriers, and the vibrational frequencies of the CO molecule on the diffe…

Materials scienceDiffusionAg(001)02 engineering and technology01 natural sciencesCatalysiskultaCatalysislaw.inventionMetalAdsorptionlaw0103 physical sciencesMoleculeAu010306 general physicsInelastic electron tunneling spectroscopyGeneral Chemistry021001 nanoscience & nanotechnology3. Good healthCOCrystallographyadsorptionvisual_artvisual_art.visual_art_mediumDensity functional theoryScanning tunneling microscope0210 nano-technologyadsorptio
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Revealing the correlation between real-space structure and chiral magnetic order at the atomic scale

2017

We image simultaneously the geometric, the electronic, and the magnetic structures of a buckled iron bilayer film that exhibits chiral magnetic order. We achieve this by combining spin-polarized scanning tunneling microscopy and magnetic exchange force microscopy (SPEX) to independently characterize the geometric as well as the electronic and magnetic structures of nonflat surfaces. This new SPEX imaging technique reveals the geometric height corrugation of the reconstruction lines resulting from strong strain relaxation in the bilayer, enabling the decomposition of the real-space from the electronic structure at the atomic level and the correlation with the resultant spin-spiral ground sta…

Materials scienceFOS: Physical sciences02 engineering and technologyElectronic structure01 natural sciencesMolecular physicsAtomic unitslaw.inventionCondensed Matter::Materials Sciencelaw0103 physical sciencesMicroscopyMesoscale and Nanoscale Physics (cond-mat.mes-hall)010306 general physicsFELIX Molecular Structure and DynamicsCondensed Matter - Materials ScienceCondensed Matter - Mesoscale and Nanoscale PhysicsScanning Probe MicroscopyBilayerRelaxation (NMR)Materials Science (cond-mat.mtrl-sci)021001 nanoscience & nanotechnologyDensity functional theoryScanning tunneling microscope0210 nano-technologyGround state
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Roadmap on quantum nanotechnologies

2021

Quantum phenomena are typically observable at length and time scales smaller than those of our everyday experience, often involving individual particles or excitations. The past few decades have seen a revolution in the ability to structure matter at the nanoscale, and experiments at the single particle level have become commonplace. This has opened wide new avenues for exploring and harnessing quantum mechanical effects in condensed matter. These quantum phenomena, in turn, have the potential to revolutionize the way we communicate, compute and probe the nanoscale world. Here, we review developments in key areas of quantum research in light of the nanotechnologies that enable them, with a …

Materials scienceFOS: Physical sciencesBioengineeringnanotekniikka02 engineering and technology01 natural sciencesnanotieteet530quantum computingEveryday experience0103 physical sciencesMesoscale and Nanoscale Physics (cond-mat.mes-hall)Quantum metrologyquantum electrodynamicsGeneral Materials Scienceddc:530kvanttimekaniikkaElectrical and Electronic Engineering010306 general physicsQuantum information sciencekvanttifysiikkaQuantumQuantum tunnellingQuantum computerQuantum PhysicsnanotechnologyCondensed Matter - Mesoscale and Nanoscale PhysicsMechanical EngineeringMacroscopic quantum phenomenaObservableGeneral Chemistry021001 nanoscience & nanotechnology530 PhysikEngineering physicsquantum phenomena3. Good healthMechanics of Materials0210 nano-technologyQuantum Physics (quant-ph)Nanotechnology
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Fabrication and characterization of small tunnel junctions through a thin dielectric membrane

1998

We show that a small tapered hole through a thin silicon nitride membrane provides a mask for tunnel junction structures. Our experiments imply, unlike in the conventional planar electron beam lithography, that tunnel junctions are well voltage biased in this structure with vanishingly small on-chip impedance. Our technique allows fabrication of double junctions, and even multijunction linear arrays, with small metallic islands in between.

Materials scienceFabricationPhysics and Astronomy (miscellaneous)business.industryCoulomb blockadePhysics::OpticsNanotechnologyCondensed Matter::Mesoscopic Systems and Quantum Hall EffectPlanarTunnel junctionCondensed Matter::SuperconductivityOptoelectronicsbusinessElectrical impedanceQuantum tunnellingElectron-beam lithographyVoltage
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Characterizing low-coordinated atoms at the periphery of MgO-supported Au islands using scanning tunneling microscopy and electronic structure calcul…

2010

The perimeter of oxide-supported metal particles is suggested to be of pivotal importance for various catalytic processes. To elucidate the underlying effects, the electronic properties of edge and corner atoms of planar Au clusters on MgO/Ag(001) thin films have been analyzed with scanning tunneling microscopy and electronic structure calculations. The low-coordinated perimeter atoms are characterized by a high density of $s$-derived states at the Fermi level. Those states accommodate transfer electrons from the MgO/Ag substrate, which render the perimeter atoms negatively charged. In contrast, the inner atoms of the island are not affected by the charge transfer and remain neutral. This c…

Materials scienceFermi levelScanning tunneling spectroscopyElectronElectronic structureSubstrate (electronics)Condensed Matter PhysicsMolecular physicsElectronic Optical and Magnetic Materialslaw.inventionsymbols.namesakeQuantum dotlawPhysics::Atomic and Molecular ClusterssymbolsCluster (physics)Atomic physicsScanning tunneling microscopePhysical Review B
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High-resolution mapping of the optical near-field components at a triangular nano-aperture.

2009

A triangular nano-aperture in an aluminum film was used as a probe in a scanning near-field optical microscope (SNOM) to image single fluorescent molecules with an optical resolution down to 30 nm. The differently oriented molecules were employed as point detectors to map the vectorial components of the electric field distribution at the illuminated triangular aperture. The good agreement of the experimental results with numerical simulations enabled us to determine both the field map at a triangular aperture and the exact orientations of the probing molecules.

Materials scienceField (physics)Aperturebusiness.industryResolution (electron density)Physics::OpticsNear and far fieldAtomic and Molecular Physics and Opticslaw.inventionOpticsOptical microscopelawElectric fieldNear-field scanning optical microscopeScanning tunneling microscopebusinessOptics express
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Trianionic gold clusters

2001

Using Penning-trap experiments and a shell-correction method incorporating ellipsoidal shape deformations, we investigate the formation and stability patterns of trianionic gold clusters. Theory and ex- periment are in remarkable agreement concerning appearance sizes and electronic shell eects. In contrast to multiply cationic clusters, decay of the trianionic gold clusters occurs primarily via electron autodetach- ment and tunneling through a Coulomb barrier, rather than via ssion. PACS. 36.40.Wa Charged clusters { 36.40.Qv Stability and fragmentation of clusters { 36.40.Cg Electronic and magnetic properties of clusters

Materials scienceFragmentation (mass spectrometry)Chemical physicsElectron captureOptical physicsCoulomb barrierElectronAtomic physicsBond-dissociation energyAtomic and Molecular Physics and OpticsQuantum tunnellingIonThe European Physical Journal D
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Probing magnetism in 2D van der Waals crystalline insulators via electron tunneling

2018

Magnetic insulators are a key resource for next-generation spintronic and topological devices. The family of layered metal halides promises varied magnetic states, including ultrathin insulating multiferroics, spin liquids, and ferromagnets, but device-oriented characterization methods are needed to unlock their potential. Here, we report tunneling through the layered magnetic insulator CrI₃ as a function of temperature and applied magnetic field.We electrically detect the magnetic ground state and interlayer coupling and observe a fieldinducedmetamagnetic transition.The metamagnetic transition results in magnetoresistances of 95, 300, and 550% for bilayer, trilayer, and tetralayer CrI₃ bar…

Materials scienceFísica de la Materia CondensadaMagnetismFOS: Physical sciencesMagnetic insulators02 engineering and technology01 natural sciencessymbols.namesakeCondensed Matter::Materials ScienceCondensed Matter - Strongly Correlated ElectronsMesoscale and Nanoscale Physics (cond-mat.mes-hall)0103 physical sciencesMultiferroicsElectron tunneling010306 general physicsQuantum tunnellingCondensed Matter - Materials ScienceMultidisciplinaryStrongly Correlated Electrons (cond-mat.str-el)SpintronicsCondensed matter physicsCondensed Matter - Mesoscale and Nanoscale PhysicsMagnonMaterials Science (cond-mat.mtrl-sci)Crystalline insulators021001 nanoscience & nanotechnologyCondensed Matter::Mesoscopic Systems and Quantum Hall EffectMagnetic fieldFerromagnetismsymbolsCondensed Matter::Strongly Correlated Electronsvan der Waals force0210 nano-technology
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