Enhanced noise at high bias in atomic-scale Au break junctions
arXiv:1306.6639 · doi:10.1038/srep04221
Abstract
Heating in nanoscale systems driven out of equilibrium is of fundamental importance, has ramifications for technological applications, and is a challenge to characterize experimentally. Prior experiments using nanoscale junctions have largely focused on heating of ionic degrees of freedom, while heating of the electrons has been mostly neglected. We report measurements in atomic-scale Au break junctions, in which the bias-driven component of the current noise is used as a probe of the electronic distribution. At low biases ( 150~mV) the noise is consistent with expectations of shot noise at a fixed electronic temperature. At higher biases, a nonlinear dependence of the noise power is observed. We consider candidate mechanisms for this increase, including flicker noise (due to ionic motion), heating of the bulk electrodes, nonequilibrium electron-phonon effects, and local heating of the electronic distribution impinging on the ballistic junction. We find that flicker noise and bulk heating are quantitatively unlikely to explain the observations. We discuss the implications of these observations for other nanoscale systems, and experimental tests to distinguish vibrational and electron interaction mechanisms for the enhanced noise.
30 pages, 7 figures
References in corpus (9)
- Optical Rectification and Field Enhancement in a Plasmonic Nanogap
- Heat dissipation in atomic-scale junctions
- Vibrational and electronic heating in nanoscale junctions
- Phonon-assisted current noise in molecular junctions
- Electron-phonon interaction and full counting statistics in molecular junctions
- Charge transfer statistics of a molecular quantum dot with a vibrational degree of freedom
- Nonlinear effects of phonon fluctuations on transport through nanoscale junctions
- Shot noise suppression at room temperature in atomic-scale Au junctions
- Spatial Dependence of Electron Interactions in Carbon Nanotubes
Cited by in corpus (18)
- Spontaneous hot-electron light emission from electron-fed optical antennas
- Electron transfer across a thermal gradient
- Shot Noise in Mesoscopic Systems: from Single Particles to Quantum Liquids
- Local temperatures of strongly-correlated quantum dots out of equilibrium
- Thermodynamic uncertainty relation in atomic-scale quantum conductors
- Spin dependent transmission of Nickelocene-Cu contacts probed with shot noise
- The thermodynamic meaning of local temperature of nonequilibrium open quantum systems
- Scope of Magnetic Tunnel Junction Based Molecular Electronics and Spintronics Devices
- Shot noise variation within ensembles of gold atomic break junctions at room temperature
- Fast and accurate shot noise measurements on atomic-size junctions in the MHz regime
- Conductance channels of a platform molecule on Au(111) probed with shot noise
- Biased Nanoscale Contact as Active Element for Electrically Driven Plasmonic Nanoantenna
- Local-noise spectroscopy for non-equilibrium systems
- Current noise enhancement: channel mixing and possible nonequilibrium phonon backaction in atomic-scale Au junctions
- Effect of quantized conductivity on the anomalous photon emission radiated from atomic-size point contacts
- Current shot noise in atomic contacts: Fe and FeH between Au electrodes
- Evolution of shot noise in suspended lithographic gold break junctions with bias and temperature
- Machine learning delta-T noise for temperature bias estimation