Transport through a vibrating quantum dot: Polaronic effects

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Abstract

We present a Green's function based treatment of the effects of electron-phonon coupling on transport through a molecular quantum dot in the quantum limit. Thereby we combine an incomplete variational Lang-Firsov approach with a perturbative calculation of the electron-phonon self energy in the framework of generalised Matsubara Green functions and a Landauer-type transport description. Calculating the ground-state energy, the dot single-particle spectral function and the linear conductance at finite carrier density, we study the low-temperature transport properties of the vibrating quantum dot sandwiched between metallic leads in the whole electron-phonon coupling strength regime. We discuss corrections to the concept of an anti-adiabatic dot polaron and show how a deformable quantum dot can act as a molecular switch. © 2010 IOP Publishing Ltd.

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Koch, T., Loos, J., Alvermann, A., Bishop, R., & Fehske, H. (2010). Transport through a vibrating quantum dot: Polaronic effects. In Journal of Physics: Conference Series (Vol. 220). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/220/1/012014

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