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Article Dans Une Revue Physical Review B: Condensed Matter and Materials Physics (1998-2015) Année : 2006

Phonon dilatation, dressed vibrons and two-vibron bound states localization in an adsorbed nanowire

Résumé

A special attention is paid to characterize the two-vibron bound state dynamics of an anharmonic molecular nanostructure coupled with a set of optical phonons. It is shown that the vibron-phonon coupling is responsible for a new dressing mechanism. The vibrons are accompanied by virtual phonons which account for the scaling of each phonon coordinate and for the dilatation of the corresponding wave function. As a result, the dynamics of the dressed vibrons is governed by an effective Hamiltonian whose frequency, anharmonicity and hopping constant depend on the number of optical phonons. The two-vibron bound states are defined according to a mean field procedure in which the number of phonons is fixed to their thermal average value. However, the thermal fluctuations of the number of phonons yield a vibron Hamiltonian equivalent to the Hamiltonian of a disordered lattice and they favor the localization of the bound states. For a weak vibron-phonon coupling, the localization results from quantum interferences and it follows a universal behavior. By contrast, for a strong coupling, the localization originates in the occurrence of infinite potential barriers which confine the bound states onto clusters whose number and size are controlled by the temperature.
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Dates et versions

hal-00114711 , version 1 (20-11-2006)

Identifiants

  • HAL Id : hal-00114711 , version 1

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Vincent J.C. Pouthier. Phonon dilatation, dressed vibrons and two-vibron bound states localization in an adsorbed nanowire. Physical Review B: Condensed Matter and Materials Physics (1998-2015), 2006, 74, pp.125418. ⟨hal-00114711⟩
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