4.7 Article

Ultrahigh superelastic damping at the nano-scale: A robust phenomenon to improve smart MEMS devices

期刊

ACTA MATERIALIA
卷 166, 期 -, 页码 346-356

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2018.12.043

关键词

Shape memory alloys; Cu-Al-Ni; Martensitic transformation; Nanoindentation; Damping capacity

资金

  1. Spanish Ministry of Economy and Competitiveness, MINECO [MAT2012-36421, MAT2017-84069P, CONSOLIDER-INGENIO 2010 CSD2009-00013]
  2. Consolidated Research Group [IT-10-310]
  3. ELKARTEK-ACTIMAT project from the Education Department of the Basque Government, Spain
  4. University of the Basque Country, UPV/EHU [GIU-17/071]
  5. H2020 REACT Project from European Community [640241]
  6. EOARD Grant (USA) [FA8655-10-1-3074]
  7. Institute for Soldier Nanotechnologies - U.S. Army Research Office at MIT [W911NF-13-D-0001]
  8. ELKARTEK-ACTIMAT project from the Industry Department of the Basque Government, Spain

向作者/读者索取更多资源

Micro and nano pillars of Copper-based shape memory alloys (SMAs) with feature sizes between about 2 mu m and 250 nm are known to exhibit ultra-high mechanical damping due to the nucleation and motion of stress-induced martensite interfaces during superelastic straining. While this behavior could be extremely useful to protect micro electro-mechanical systems (MEMS) against vibrations in aggressive environments, a fundamental question must yet be answered in order to envisage further applications, namely, whether this damping is reproducible and stable over long times and many cycles, or whether the damping is a signal of accumulating damage that could compromise long-term usage. In the present paper this crucial question is answered; we show that micropillar arrays of Cu-Al-Ni SMAs exhibit a completely recoverable and reproducible superelastic response, with an ultra-high damping loss factor eta > 0.1, or even higher for sub-micrometer pillars, eta > 0.2, even after thousands of cycles (>5000) and after long times spanning more than four years. Furthermore, the first high-frequency tests on such nanoscale SMAs show that their superelastic response is very fast and relevant to ultra-high damping even at frequencies as high as 1000 Hz. This paves the way for the design of micro/nano dampers, based on SMAs, to improve the reliability of MEMS in noisy environments. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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