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Time-Dependent Variational Approach to the Phonon Dispersion Relation of the Commensurate Quantum Frenkel-Kontorova Model 被引量:4

Time-Dependent Variational Approach to the Phonon Dispersion Relation of the Commensurate Quantum Frenkel-Kontorova Model
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摘要 The phonon dispersion relation of the commensurate quantum Frenkel-Kontorova model is studied by means of the time-dependent variational approach combined with a Hartree-type many-body trial wavefunction for the particles. The single-particle state is taken to be a frozen Jackiw-Kerman wavefunction. Under the condition of minimum uncertainty, equations of motion for the particle expectation values are derived to obtain the phonon dispersion relation. It is shown that the strength of the substrate potential and the phonon excitation gap are reduced due to the quantum fluctuations in comparison with those of the classical model. We also compare our results with those previously obtained by using the path-integral molecular dynamics. The phonon dispersion relation of the commensurate quantum Frenkel-Kontorova model is studied by means of the time-dependent variational approach combined with a Hartree-type many-body trial wavefunction for the particles. The single-particle state is taken to be a frozen Jackiw-Kerman wavefunction. Under the condition of minimum uncertainty, equations of motion for the particle expectation values are derived to obtain the phonon dispersion relation. It is shown that the strength of the substrate potential and the phonon excitation gap are reduced due to the quantum fluctuations in comparison with those of the classical model. We also compare our results with those previously obtained by using the path-integral molecular dynamics.
作者 钟红伟 唐翌
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2006年第8期1965-1968,共4页 中国物理快报(英文版)
关键词 STICK-SLIP MOTION GROUND-STATE JOSEPHSON-JUNCTIONS DEVILS STAIRCASE PHASE DYNAMICS PROPAGATION TRANSITION FRICTION LOCKING STICK-SLIP MOTION GROUND-STATE JOSEPHSON-JUNCTIONS DEVILS STAIRCASE PHASE DYNAMICS PROPAGATION TRANSITION FRICTION LOCKING
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