Zero-bias tunneling anomaly in a clean 2D electron gas caused by smooth density variations
arXiv:cond-mat/0702252 · doi:10.1103/PhysRevLett.99.206405
Abstract
We show that smooth variations, δn({\bf r}), of the local electron concentration in a clean 2D electron gas give rise to a zero-bias anomaly in the tunnel density of states, ν(ω), even in the absence of scatterers, and thus, without the Friedel oscillations. The energy width, ω_0, of the anomaly scales with the magnitude, δn, and characteristic spatial extent, D, of the fluctuations as (δn/D)^{2/3}, while the relative magnitude δν/νscales as (δn/D). With increasing ω, the averaged δνoscillates with ω. We demonstrate that the origin of the anomaly is a weak curving of the classical electron trajectories due to the smooth inhomogeneity of the gas. This curving suppresses the corrections to the electron self-energy which come from the virtual processes involving two electron-hole pairs
4+ pages, 3 figures
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