Collective dynamics and self-motions in the van der Waals liquid tetrahydrofuran from meso- to inter-molecular scales disentangled by neutron spectroscopy with polarization analysis

Author:

Arbe Arantxa1ORCID,Nilsen Gøran J.2ORCID,Devonport Mark2,Farago Bela3ORCID,Alvarez Fernando14ORCID,Martínez González José A.5ORCID,Colmenero Juan145ORCID

Affiliation:

1. Centro de Física de Materiales (CFM) (CSIC–UPV/EHU) – Materials Physics Center (MPC) 1 , Paseo Manuel de Lardizabal 5, 20018 San Sebastián, Spain

2. ISIS Neutron and Muon Source, Rutherford Appleton Laboratory 2 , Didcot OX11 0QX, United Kingdom

3. Institut Laue-Langevin 3 , 71 avenue des Martyrs, Grenoble Cedex 9, 38042, France

4. Departamento de Polímeros y Materiales Avanzados: Física, Química y Tecnología (UPV/EHU) 4 , Apartado 1072, E-20080 San Sebastián, Spain

5. Donostia International Physics Center 5 , Paseo Manuel de Lardizabal 4, 20018 San Sebastián, Spain

Abstract

By using time-of-flight neutron spectroscopy with polarization analysis, we have separated coherent and incoherent contributions to the scattering of deuterated tetrahydrofuran in a wide scattering vector (Q)-range from meso- to inter-molecular length scales. The results are compared with those recently reported for water to address the influence of the nature of inter-molecular interactions (van der Waals vs hydrogen bond) on the dynamics. The phenomenology found is qualitatively similar in both systems. Both collective and self-scattering functions are satisfactorily described in terms of a convolution model that considers vibrations, diffusion, and a Q-independent mode. We observe a crossover in the structural relaxation from being dominated by the Q-independent mode at the mesoscale to being dominated by diffusion at inter-molecular length scales. The characteristic time of the Q-independent mode is the same for collective and self-motions and, contrary to water, faster and with a lower activation energy (≈1.4 Kcal/mol) than the structural relaxation time at inter-molecular length scales. This follows the macroscopic viscosity behavior. The collective diffusive time is well described by the de Gennes narrowing relation proposed for simple monoatomic liquids in a wide Q-range entering the intermediate length scales, in contraposition to the case of water.

Funder

Ministerio de Ciencia e InnovaciÃn

Eusko Jaurlaritza

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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