Diffusion of H2 and D2 confined in single-walled carbon nanotubes: quantum dynamics and confinement effects

Publication date

2016-09-16T17:03:39Z

2017-07-26T22:01:29Z

2016-07-26

2016-09-16T17:03:44Z

Abstract

We present quantum dynamics calculations of the diffusion constant of H2 and D2 along a single-walled carbon nanotube at temperatures between 50 and 150 K. We calculate the respective diffusion rates in the low-pressure limit by adapting well-known approaches and methods from the chemical dynamics field using two different potential energy surfaces to model the C-H interaction. Our results predict a usual kinetic isotope effect, with H2 diffusing faster than D2 in the higher temperature range but a reverse trend at temperatures below 50-70 K. These findings are consistent with experimental observation in similar systems and can be explained by the different effective size of both isotopes resulting from their different zero-point energy.

Document Type

Article


Accepted version

Language

English

Publisher

American Chemical Society

Related items

Versió postprint del document publicat a: http://dx.doi.org/10.1021/acs.jpca.6b00467

Journal of Physical Chemistry A, 2016, vol. 120, num. 33, p. 6501-6512

http://dx.doi.org/10.1021/acs.jpca.6b00467

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(c) American Chemical Society , 2016

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