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Preprint article · Journal article

Impact of Transduction Scaling Laws on Nanoelectromechanical Systems

From

Department of Photonics Engineering, Technical University of Denmark1

Quantum and Laser Photonics, Department of Photonics Engineering, Technical University of Denmark2

We study the electromechanical transduction in nanoelectromechanical actuators and show that the differences in scaling laws for electrical and mechanical effects lead to an overall nontrivial miniaturization behavior. In particular, the previously neglected fringing fields considerably increase electrical forces and improve the stability of nanoscale actuators.

This shows that electrostatics does not pose any limitations to the miniaturization of electromechanical systems; in fact, in several respects, nanosystems outperform their microscale counterparts. As a specific example, we consider in-plane actuation of ultrathin slabs and show that devices consisting of a few layers of graphene are feasible, implying that electromechanical resonators operating beyond 40 GHz are possible with currently available technology.

Language: English
Year: 2020
Pages: 223902
ISSN: 10797114 and 00319007
Types: Preprint article and Journal article
DOI: 10.1103/PhysRevLett.124.223902
ORCIDs: Tsoukalas, Konstantinos , Vosoughi Lahijani, Babak and Stobbe, Søren

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