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Electronic torsional sound in linear atomic chains: Chemical energy transport at 1000 km/s.

作者信息

Kurnosov Arkady A, Rubtsov Igor V, Maksymov Andrii O, Burin Alexander L

机构信息

Department of Chemistry, Tulane University, New Orleans, Louisiana 70118, USA.

出版信息

J Chem Phys. 2016 Jul 21;145(3):034903. doi: 10.1063/1.4958726.

Abstract

We investigate entirely electronic torsional vibrational modes in linear cumulene chains. The carbon nuclei of a cumulene are positioned along the primary axis so that they can participate only in the transverse and longitudinal motions. However, the interatomic electronic clouds behave as a torsion spring with remarkable torsional stiffness. The collective dynamics of these clouds can be described in terms of electronic vibrational quanta, which we name torsitons. It is shown that the group velocity of the wavepacket of torsitons is much higher than the typical speed of sound, because of the small mass of participating electrons compared to the atomic mass. For the same reason, the maximum energy of the torsitons in cumulenes is as high as a few electronvolts, while the minimum possible energy is evaluated as a few hundred wavenumbers and this minimum is associated with asymmetry of zero point atomic vibrations. Theory predictions are consistent with the time-dependent density functional theory calculations. Molecular systems for experimental evaluation of the predictions are proposed.

摘要

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