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.
CITATION STYLE
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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