Tunneling between parallel two-dimensional electron gases

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Tunneling between parallel two-dimensional electron gases.

The tunneling between two parallel two-dimensional electron gases has been investigated as a function of temperature T , carrier density n, and the applied perpendicular magnetic field B. In zero magnetic field the equilibrium resonant lineshape is Lorentzian, reflecting the Lorentzian form of the spectral functions within each layer. From the width of the tunneling resonance the lifetime of th...

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Field-induced resonant tunneling between parallel two-dimensional electron systems

Resonant tunneling (RT) has by now been observed in a wide variety of semiconductor systems.’ The commonest configuration, the so-called double-barrier structure, typically consists of a single GaAs quantum well sandwiched between two AlGaAs barriers. Above and below the barriers are heavily doped GaAs regions serving as source and drain, Application of a dc bias voltage can induce RT via the e...

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Tunneling conductance between parallel two-dimensional electron systems.

We derive and evaluate expressions for the low temperature dc equilibrium tunneling conductance between parallel two-dimensional electron systems. Our theory is based on a linear-response formalism and on impurity-averaged perturbation theory. The disorder broadening of features in the dependence of tunneling conductance on sheet densities and in-plane magnetic field strengths is influenced bot...

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Tunneling between two-dimensional electron gases in a strong magnetic field.

We have measured the tunneling between two two-dimensional electron gases at high magnetic fields B, when the carrier densities of the two electron layers are matched. For filling factors ν < 1, there is a gap in the current-voltage characteristics centered about V = 0, followed by a tunneling peak at ∼ 6 mV. Both features have been observed before and have been attributed to electron-electron ...

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ژورنال

عنوان ژورنال: Physical Review B

سال: 1996

ISSN: 0163-1829,1095-3795

DOI: 10.1103/physrevb.54.10614