Quantum Monte Carlo and variational approaches to the Holstein model

Martin Hohenadler, Hans Gerd Evertz, and Wolfgang von der Linden
Phys. Rev. B 69, 024301 – Published 15 January 2004
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Abstract

Based on the canonical Lang-Firsov transformation of the Hamiltonian we develop a very efficient quantum Monte Carlo algorithm for the Holstein model with one electron. Separation of the fermionic degrees of freedom by a reweighting of the probability distribution leads to a dramatic reduction in computational effort. A principal component representation of the phonon degrees of freedom allows to sample completely uncorrelated phonon configurations. The combination of these elements enables us to perform efficient simulations for a wide range of temperature, phonon frequency, and electron-phonon coupling on clusters large enough to avoid finite-size effects. The algorithm is tested in one dimension and the data are compared with exact-diagonalization results and with existing work. Moreover, the ideas presented here can also be applied to the many-electron case. In the one-electron case considered here, the physics of the Holstein model can be described by a simple variational approach.

  • Received 19 May 2003

DOI:https://doi.org/10.1103/PhysRevB.69.024301

©2004 American Physical Society

Authors & Affiliations

Martin Hohenadler*, Hans Gerd Evertz, and Wolfgang von der Linden

  • Institute for Theoretical Physics, Graz University of Technology, Petersgasse 16, A-8010 Graz, Austria

  • *Electronic address: hohenadler@itp.tu-graz.ac.at

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Issue

Vol. 69, Iss. 2 — 1 January 2004

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