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The vibration properties of the (n,0) boron nitride nanotubes from ab initio quantum chemical simulations

Authors :
Jacopo Baima
Roberto Dovesi
Michel Rérat
Matteo Ferrabone
Alessandro Erba
Roberto Orlando
Institut des sciences analytiques et de physico-chimie pour l'environnement et les materiaux (IPREM)
Université de Pau et des Pays de l'Adour (UPPA)-Institut de Chimie du CNRS (INC)-Centre National de la Recherche Scientifique (CNRS)
Source :
Journal of Chemical Physics, Journal of Chemical Physics, American Institute of Physics, 2013, 138 (5), ⟨10.1063/1.4788831⟩
Publication Year :
2013
Publisher :
HAL CCSD, 2013.

Abstract

cited By 23; International audience; The vibration spectrum of single-walled zigzag boron nitride (BN) nanotubes is simulated with an ab initio periodic quantum chemical method. The trend towards the hexagonal monolayer (h-BN) in the limit of large tube radius R is explored for a variety of properties related to the vibrational spectrum: vibration frequencies, infrared intensities, oscillator strengths, and vibration contributions to the polarizability tensor. The (n,0) family is investigated in the range from n = 6 (24 atoms in the unit cell and tube radius R = 2.5 Å) to n = 60 (240 atoms in the cell and R = 24.0 Å). Simulations are performed using the CRYSTAL program which fully exploits the rich symmetry of this class of one-dimensional periodic systems: 4n symmetry operators for the general (n,0) tube. Three sets of infrared active phonon bands are found in the spectrum. The first one lies in the 0-600 cm-1 range and goes regularly to zero when R increases; the connection between these normal modes and the elastic and piezoelectric constants of h-BN is discussed. The second (600-800 cm-1) and third (1300-1600 cm-1) sets tend regularly, but with quite different speed, to the optical modes of the h-BN layer. The vibrational contribution of these modes to the two components (parallel and perpendicular) of the polarizability tensor is also discussed. © 2013 American Institute of Physics.

Details

Language :
English
ISSN :
00219606 and 10897690
Database :
OpenAIRE
Journal :
Journal of Chemical Physics, Journal of Chemical Physics, American Institute of Physics, 2013, 138 (5), ⟨10.1063/1.4788831⟩
Accession number :
edsair.doi.dedup.....15c4996cfe5a8d8b1fc35d3bb5d7028e
Full Text :
https://doi.org/10.1063/1.4788831⟩