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Generation of mechanical force by grafted polyelectrolytes in an electric field: application to polyelectrolyte-based nano-devices

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journal contribution
posted on 2018-03-07, 13:37 authored by Nikolai V. Brilliantov, Y. A. Budkov, C. Seidel
We analyse theoretically and by means of molecular dynamics (MD) simulations the generation of mechanical force by a polyelectrolyte (PE) chain grafted to a plane. The PE is exposed to an external electric field that favours its adsorption on the plane. The free end of the chain is linked to a deformable target body. By varying the field, one can alter the length of the non-adsorbed part of the chain. This entails variation of the deformation of the target body and hence variation of the force arising in the body. Our theoretical predictions for the generated force are in very good agreement with the MD data. Using the theory developed for the generated force, we study the effectiveness of possible PE-based nano-vices, composed of two clenching planes connected by PEs and exposed to an external electric field. We exploit the Cundall–Strack solid friction model to describe the friction between a particle and the clenching planes. We compute the diffusion coefficient of a clenched particle and show that it drastically decreases even in weak applied fields. This demonstrates the efficacy of the PE-based nano-vices, which may be a possible alternative to the existing nanotube nano-tweezers and optical tweezers.

History

Citation

Philosophical Transactions A: Mathematical, Physical and Engineering Sciences, 2016, 374 (2080)

Author affiliation

/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Mathematics

Version

  • AM (Accepted Manuscript)

Published in

Philosophical Transactions A: Mathematical

Publisher

The Royal Society

issn

1364-503X

eissn

1471-2962

Copyright date

2016

Available date

2018-03-07

Publisher version

http://rsta.royalsocietypublishing.org/content/374/2080/20160143

Language

en