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arXiv · 0707.0210

Spin-boson dynamics beyond conventional perturbation theories

Abstract

A novel approximation scheme is proposed to describe the dynamics of the spin-boson problem. Being nonperturbative in the coupling strength nor in the tunneling frequency, it gives reliable results over a wide regime of temperatures and coupling strength to the thermal environment for a large class of bath spectral densities. We use a path-integral approach and start from the exact solution for the two-level system population difference in the form of a generalized master equation (GME). Then, we approximate inter-blip and blip-sojourns interactions up to linear order, while retaining all intra-blip correlations to find the kernels entering the GME in analytical form. Our approximation scheme, which we call Weakly-Interacting Blip Approximation (WIBA), fully agrees with conventional perturbative approximations in the tunneling matrix element (Non-Interacting Blip Approximation) or in the system-bath coupling strength.

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BibTeXRIS

Francesco Nesi, Elisabetta Paladino, Michael Thorwart, Milena Grifoni. 2007-07-02. Spin-boson dynamics beyond conventional perturbation theories. https://doi.org/10.1103/physrevb.76.155323

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