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      Metal-insulator transition in the one-dimensional Holstein model at half filling

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          Abstract

          We study the one-dimensional Holstein model with spin-1/2 electrons at half-filling. Ground state properties are calculated for long chains with great accuracy using the density matrix renormalization group method and extrapolated to the thermodynamic limit. We show that for small electron-phonon coupling or large phonon frequency, the insulating Peierls ground state predicted by mean-field theory is destroyed by quantum lattice fluctuations and that the system remains in a metallic phase with a non-degenerate ground state and power-law electronic and phononic correlations. When the electron-phonon coupling becomes large or the phonon frequency small, the system undergoes a transition to an insulating Peierls phase with a two-fold degenerate ground state, long-range charge-density-wave order, a dimerized lattice structure, and a gap in the electronic excitation spectrum.

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          Most cited references31

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          Studies of polaron motion

          T Holstein (1959)
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            Phase diagram of one-dimensional electron-phonon systems. I. The Su-Schrieffer-Heeger model

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              Two-site polaron problem: Electronic and vibrational properties

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                Author and article information

                Journal
                10.1103/PhysRevB.60.7950
                cond-mat/9903149

                Condensed matter
                Condensed matter

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