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Physics-aware macromodels for MEMS switches

Aurel-Sorin Lup (Department of Electrical Engineering, Politehnica University of Bucharest, Bucharest, Romania)
Gabriela Ciuprina (Department of Electrical Engineering, Politehnica University of Bucharest, Bucharest, Romania)
Daniel Ioan (Department of Electrical Engineering, Politehnica University of Bucharest, Bucharest, Romania)
Anton Duca (Department of Electrical Engineering, Politehnica University of Bucharest, Bucharest, Romania)
Alexandra Nicoloiu (IMT-Bucharest, Bucharest, Romania)
Dan Vasilache (IMT-Bucharest, Bucharest, Romania)

COMPEL - The international journal for computation and mathematics in electrical and electronic engineering

ISSN: 0332-1649

Article publication date: 27 April 2020

Issue publication date: 20 May 2020

51

Abstract

Purpose

The purpose of this paper is to propose a physics-aware algorithm to obtain radio frequency (RF)-reduced models of micro-electromechanical systems (MEMS) switches and show how, together with multiphysics macromodels, they can be realized as circuits that include both lumped and distributed parameters.

Design/methodology/approach

The macromodels are extracted with a robust procedure from the solution of Maxwell’s equations with electromagnetic circuit element (ECE) boundary conditions. The reduced model is extracted from the simulations of three electromagnetic field problems, in full-wave regime, that correspond to three configurations: signal lines alone, switch in the up and down positions.

Findings

The technique is exemplified for shunt switches, but it can be extended for lateral switches. Moreover, the algorithm is able take frequency dependence into account both for the signal lines and for the switch model. For the later, the order of the model is increased until a specified accuracy is achieved.

Originality/value

The use of ECE as boundary conditions for the RF simulation of MEMS switches has the advantage that the definition of ports is unambiguous and robust as the ports are clearly defined. The extraction approach has the advantage that the simplified model keeps the basic phenomena, i.e. the propagation of the signal along the lines. As the macromodel is realized with a netlist that uses transmission lines models, the lines’ extension is natural. The frequency dependence can be included in the model, if needed.

Keywords

Acknowledgements

This paper forms part of a special section “12th International Conference on Scientific Computing in Electrical Engineering (SCEE 2018)”, guest edited by Vittorio Romano.

The work has been funded by the Operational Programme Human Capital of the Ministry of European Funds through The Financial Agreement 51675/09.07.2019, SMIS code 125125.

Citation

Lup, A.-S., Ciuprina, G., Ioan, D., Duca, A., Nicoloiu, A. and Vasilache, D. (2020), "Physics-aware macromodels for MEMS switches", COMPEL - The international journal for computation and mathematics in electrical and electronic engineering, Vol. 39 No. 2, pp. 497-509. https://doi.org/10.1108/COMPEL-06-2019-0267

Publisher

:

Emerald Publishing Limited

Copyright © 2020, Emerald Publishing Limited

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