A theoretical model for investigating the effect of vacuum fluctuations on the electromechanical stability of nanotweezers

A. Farrokhabadi, J. Mokhtari, A. Koochi, M. Abadyan

Research output: Journal PublicationArticlepeer-review

24 Citations (Scopus)

Abstract

In this paper, the impact of the Casimir attraction on the electromechanical stability of nanowire-fabricated nanotweezers is investigated using a theoretical continuum mechanics model. The Dirichlet mode is considered and an asymptotic solution, based on path integral approach, is applied to consider the effect of vacuum fluctuations in the model. The Euler–Bernoulli beam theory is employed to derive the nonlinear governing equation of the nanotweezers. The governing equations are solved by three different approaches, i.e. the modified variation iteration method, generalized differential quadrature method and using a lumped parameter model. Various perspectives of the problem, including the comparison with the van der Waals force regime, the variation of instability parameters and effects of geometry are addressed in present paper. The proposed approach is beneficial for the precise determination of the electrostatic response of the nanotweezers in the presence of Casimir force.

Original languageEnglish
Pages (from-to)599-609
Number of pages11
JournalIndian Journal of Physics
Volume89
Issue number6
DOIs
Publication statusPublished - 1 Jun 2015
Externally publishedYes

Keywords

  • Casimir attraction
  • Continuum model
  • Electromechanical stability
  • Nanowire/nanotube fabricated nanotweezers
  • Path-integral approach

ASJC Scopus subject areas

  • General Physics and Astronomy

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