Thermomechanical design, hybrid fabrication, and testing of a MOEMS deformable mirror

  • Reinlein C
  • Appelfelder M
  • Gebhardt S
  • et al.
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Abstract

This paper reports on the thermomechanical modeling and characterization of a micro-opto-electro-mechanical systems deformable mirror (DM). This unimorph DM offers a low-temperature cofired ceramic substrate with screen-printed piezoceramic actuators on its rear surface and a machined copper layer on its front surface. We present the DM setup, thermomechanical modeling, and hybrid fabrication. The setup of the DM is transferred into a thermomechanical model in ANSYS Multiphysics. The thermomechanical modeling of the DM evaluates and optimizes the mount material and the copper-layer thickness for the loading cases: homogeneous thermal loading and laser-loading of the mirror. Subsequently, the developed and theoretically optimized DM setup is experimentally validated. The homogeneous loading of the optimized design results in a membrane deformation with a rate of -0.2 mu mK(-1), whereas the laser loading causes an opposed change with a rate of -0.2 mu mW(-1). Therefore, the proposed mirror design is suitable to pre-compensate laser-generated mirror deformations by homogeneous thermal loading (heating). We experimentally show that a 35-K preheating of the mirror assembly compensates for an absorbed laser power of 1.25 W. Therefore, the novel compensation regime "compound loading" for the suppression of laser-induced deformations is developed and proven. (C) The Authors. Published by SPIE under a Creative Commons Attribution 3.0 Unported License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.

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APA

Reinlein, C., Appelfelder, M., Gebhardt, S., Beckert, E., Eberhardt, R., & Tünnermann, A. (2013). Thermomechanical design, hybrid fabrication, and testing of a MOEMS deformable mirror. Journal of Micro/Nanolithography, MEMS, and MOEMS, 12(1), 013016. https://doi.org/10.1117/1.jmm.12.1.013016

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