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Enhanced noise at high bias in atomic-scale Au break junctions

机译:原子级Au断裂结中高偏压时的增强噪声

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摘要

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.
机译:失衡驱使的纳米级系统的加热具有根本的重要性,对技术应用有影响,并且是表征实验的挑战。先前使用纳米级结的实验主要集中于离子自由度的加热,而电子的加热却被忽略了。我们报告了原子级Au断裂结的测量结果,其中电流噪声的偏置驱动分量被用作电子分布的探针。在低偏置(<150 mV)时,噪声与在固定电子温度下散粒噪声的期望值一致。在较高的偏置下,观察到噪声功率的非线性依赖性。我们考虑这种增加的候选机制,包括闪烁噪声(由于离子运动),体电极的加热,非平衡电子声子效应以及撞击弹道结的电子分布的局部加热。我们发现闪烁噪声和整体加热在数量上不太可能解释这些观察结果。我们讨论了这些观察对于其他纳米级系统的意义,并讨论了区分振动和电子相互作用机制以增强噪声的实验测试。

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