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Electron counting statistics and coherent states of electric current

Journal of Mathematical Physics · 1996 · Vol. 37(10) · pp. 4845–4866
Leonid S. LevitovHyunwoo LeeGordey B. Lesovik

Abstract

A theory of electron counting statistics in quantum transport is presented. It involves an idealized scheme of current measurement using a spin 1/2 coupled to the current so that it precesses at the rate proportional to the current. Within such an approach, counting charge without breaking the circuit is possible. As an application, we derive the counting statistics in a single channel conductor at finite temperature and bias. For a perfectly transmitting channel the counting distribution is Gaussian, both for zero-point fluctuations and at finite temperature. At constant bias and low temperature the distribution is binomial, i.e., it arises from Bernoulli statistics. Another application considered is the noise due to short current pulses that involve few electrons. We find the time-dependence of the driving potential that produces coherent noise-minimizing current pulses, and display analogies of such current states with quantum-mechanical coherent states.

Quantum and electron transport phenomenaAdvancements in Semiconductor Devices and Circuit DesignMolecular Junctions and NanostructuresCurrent (fluid)Electron countingNoise (video)Photon countingConductorCharge (physics)ElectronElectric currentChannel (broadcasting)
Citations
914
FWCI
2.07
field-weighted impact
References
18
Percentile
85%
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Citations per year
Cited by
Shot noise in mesoscopic conductors
Physics Reports · 2000 · 2,476 citations
References
The Quantum Theory of Optical Coherence
Physical Review · 1963 · 3,931 citations
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