Electron Standing Wave Formation in Atomic Wires
arXiv:cond-mat/9907092 · doi:10.1103/PhysRevB.60.6028
Abstract
Using the Landauer formulation of transport theory and tight binding models of the electronic structure, we study electron transport through atomic wires that form 1D constrictions between pairs of metallic nano-contacts. Our results are interpreted in terms of electron standing waves formed in the atomic wires due to interference of electron waves reflected at the ends of the atomic constrictions. We explore the influence of the chemistry of the atomic wire-metal contact interfaces on these standing waves and the associated transport resonances by considering two types of atomic wires: gold wires attached to gold contacts and carbon wires attached to gold contacts. We find that the conductance of the gold wires is roughly for the wire lengths studied, in agreement with experiments. By contrast, for the carbon wires the conductance is found to oscillate strongly as the number of atoms in the wire varies, the odd numbered chains being more conductive than the even numbered ones, in agreement with previous theoretical work that was based on a different model of the carbon wire and metal contacts.
14 pages, includes 6 figures
Cited by in corpus (31)
- Density functional method for nonequilibrium electron transport
- Quantum properties of atomic-sized conductors
- Electron transmission through molecules and molecular interfaces
- First-Principles Based Matrix-Green's Function Approach to Molecular Electronic Devices: General Formalism
- Inelastic transport theory from first-principles: methodology and applications for nanoscale devices
- Microscopic study of electrical transport through individual molecules with metallic contacts: I. "Band" lineup, voltage drop and high-field transport
- Probability of anomalously large Bit-Error-Rate in long haul optical transmission
- Onset of dissipation in ballistic atomic wires
- Quantum Conductance in Silver Nanowires: correlation between atomic structure and transport properties
- Electron-vibration interaction in transport through atomic gold wires
- Molecular Spintronics: Spin-Dependent Electron Transport in Molecular Wires
- Structure and conductance histogram of atomic-sized Au contacts
- Even-odd behavior of conductance in monatomic sodium wires
- I-V characteristics and differential conductance fluctuations of Au nanowires
- The role of structural evolution on the quantum conductance behavior of gold nanowires during stretching
- Current-Driven Conformational Changes, Charging and Negative Differential Resistance in Molecular Wires
- Quantum Interference in Single Molecule Electronic Systems
- Electron transport in nanotube--molecular wire hybrids
- Conductance of a molecular junction mediated by unconventional metal-induced gap states
- Even-Odd Oscillation in Conductance of Single-Row Sodium Nanowire
- Mechano-switching devices from carbon wire-carbon nanotube junctions
- Non-universal behavior of the parity effect in monovalent atomic wires
- Theoretical Fluctuations of Conductance in Stretched Monatomic Nanowire
- A wave function based ab initio non-equilibrium Green's function approach to charge transport
- Electron transport through a strongly correlated monoatomic chain
- From a local Green function to molecular charge transport
- Length and temperature dependent crossover of charge transport across molecular junctions
- Thermoelectric voltage switching in gold atomic wire junctions
- Gate control of spin-polarized conductance in alloyed transition metal nano-contacts
- Geometry dependence of the conductance oscillations of monovalent atomic chains
- Correlation between Quantum Conductance and Atomic Arrangement of Silver Atomic-Size Nanowires