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Silicon cantilevers locally heated from 300K up to the melting point: temperature profile measurement from their resonances frequency shift

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arxiv 2012.00421 v2 pith:O4JLJUAH submitted 2020-12-01 cond-mat.mtrl-sci cond-mat.stat-mechphysics.class-phphysics.ins-det

Silicon cantilevers locally heated from 300K up to the melting point: temperature profile measurement from their resonances frequency shift

classification cond-mat.mtrl-sci cond-mat.stat-mechphysics.class-phphysics.ins-det
keywords temperatureprofileshiftheatedsiliconaccountcantileversfrequency
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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When heated, micro-resonators present a shift of their resonance frequencies. We study specifically silicon cantilevers heated locally by laser absorption, and evaluate theoretically and experimentally their temperature profile and its interplay with the mechanical resonances. We present a enhanced version of our earlier model [F. Aguilar Sandoval et al., J. Appl. Phys. 117, 234503 (2015)] including both elasticity and geometry temperature dependency, showing that the latter can account for 20% of the observed shift for the first flexural mode. The temperature profile description takes into account thermal clamping conditions, radiation at high temperature, and lower conductivity than bulk silicon due to phonon confinement. Thanks to a space-power equivalence in the heat equation, scanning the heating point along the cantilever directly reveals the temperature profile. Finally, frequency shift measurement can be used to infer the temperature field with a few percent precision.

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