Intermolecular vibrations and fast relaxations in supercooled ionic liquids


Autoria(s): RIBEIRO, Mauro C. C.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

19/04/2012

19/04/2012

2011

Resumo

Short-time dynamics of ionic liquids has been investigated by low-frequency Raman spectroscopy (4 < omega < 100 cm(-1)) within the supercooled liquid range. Raman spectra are reported for ionic liquids with the same anion, bis(trifluoromethylsulfonyl)imide, and different cations: 1-butyl-3-methylimidazolium, 1-hexyl-3-methylimidazolium, 1-butyl-1-methylpiperidinium, trimethylbutylammonium, and tributylmethylammonium. It is shown that low-frequency Raman spectroscopy provides similar results as optical Kerr effect (OKE) spectroscopy, which has been used to study intermolecular vibrations in ionic liquids. The comparison of ionic liquids containing aromatic and non-aromatic cations identifies the characteristic feature in Raman spectra usually assigned to librational motion of the imidazolium ring. The strength of the fast relaxations (quasi-elastic scattering, QES) and the intermolecular vibrational contribution (boson peak) of ionic liquids with non-aromatic cations are significantly lower than imidazolium ionic liquids. A correlation length assigned to the boson peak vibrations was estimated from the frequency of the maximum of the boson peak and experimental data of sound velocity. The correlation length related to the boson peak (similar to 19 angstrom) does not change with the length of the alkyl chain in imidazolium cations, in contrast to the position of the first-sharp diffraction peak observed in neutron and X-ray scattering measurements of ionic liquids. The rate of change of the QES intensity in the supercooled liquid range is compared with data of excess entropy, free volume, and mean-squared displacement recently reported for ionic liquids. The temperature dependence of the QES intensity in ionic liquids illustrates relationships between short-time dynamics and long-time structural relaxation that have been proposed for glass-forming liquids. (C) 2011 American Institute of Physics. [doi: 10.1063/1.3604533]

FAPESP

CNPq

Identificador

JOURNAL OF CHEMICAL PHYSICS, v.134, n.24, 2011

0021-9606

http://producao.usp.br/handle/BDPI/16816

10.1063/1.3604533

http://dx.doi.org/10.1063/1.3604533

Idioma(s)

eng

Publicador

AMER INST PHYSICS

Relação

Journal of Chemical Physics

Direitos

openAccess

Copyright AMER INST PHYSICS

Palavras-Chave #boson systems #entropy #librational states #neutron diffraction #optical Kerr effect #organic compounds #quasi-elastic scattering #Raman spectra #rotational-vibrational energy transfer #supercooling #vitrification #X-ray scattering #SHARP DIFFRACTION PEAK #GLASS-FORMING LIQUIDS #FREQUENCY RAMAN-SCATTERING #INTERMEDIATE-RANGE ORDER #SYSTEMATIC COMPUTER-SIMULATION #EXTENDED PRESSURE RANGE #MODE-COUPLING THEORY #TEMPERATURE-DEPENDENCE #LIGHT-SCATTERING #FREE-VOLUME #Physics, Atomic, Molecular & Chemical
Tipo

article

original article

publishedVersion