Artículo
Orientational relaxations in solid (1,1,2,2)tetrachloroethane
Tripathi, P.; Mitsari, E.; Romanini, M.; Serra, Pablo
; Tamarit, J. Ll.; Zuriaga, Mariano Jose
; Macovez, R.
Fecha de publicación:
27/04/2016
Editorial:
American Institute of Physics
Revista:
Journal of Chemical Physics
ISSN:
0021-9606
e-ISSN:
1089-7690
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
We employ dielectric spectroscopy and molecular dynamic simulations to investigate the dipolar dynamics in the orientationally disordered solid phase of (1,1,2,2)tetrachloroethane. Three distinct orientational dynamics are observed as separate dielectric loss features, all characterized by a simply activated temperature dependence. The slower process, associated to a glassy transition at 156 ± 1 K, corresponds to a cooperative motion by which each molecule rotates by 180° around the molecular symmetry axis through an intermediate state in which the symmetry axis is oriented roughly orthogonally to the initial and final states. Of the other two dipolar relaxations, the intermediate one is the Johari-Goldstein precursor relaxation of the cooperative dynamics, while the fastest process corresponds to an orientational fluctuation of single molecules into a higher-energy orientation. The Kirkwood correlation factor of the cooperative relaxation is of the order of one tenth, indicating that the molecular dipoles maintain on average a strong antiparallel alignment during their collective motion. These findings show that the combination of dielectric spectroscopy and molecular simulations allows studying in great detail the orientational dynamics in molecular solids.
Palabras clave:
DESORDEN
,
DIELECTRICOS
,
MDS
,
JOHARI-GOLDSTEIN
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Articulos(IFEG)
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Citación
Tripathi, P.; Mitsari, E.; Romanini, M.; Serra, Pablo; Tamarit, J. Ll.; et al.; Orientational relaxations in solid (1,1,2,2)tetrachloroethane; American Institute of Physics; Journal of Chemical Physics; 144; 16; 27-4-2016; 1-8
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