4.8 Article

Single-Crystalline Vanadium Dioxide Actuators

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 29, 期 20, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201900527

关键词

domain modulation; metal-insulator transitions; stoichiometry engineering; thermal actuators; vanadium dioxides

资金

  1. Guangdong Natural Science Funds for Distinguished Young Scholars [2015A030306044]
  2. National Natural Science Foundation of China [51776094]
  3. Guangdong-Hong Kong joint innovation project [2016A050503012]
  4. National Key Research and Development Project from the Ministry of Science and Technology of the People's Republic of China [2016YFA0202400, 2016YFA0202404]
  5. Training Program for Outstanding Young Teachers at Higher Education Institutions of Guangdong Province [YQ2015151]
  6. Hong Kong Research Grants Council [C6021-14E]
  7. Southern University of Science and Technology

向作者/读者索取更多资源

Actuators that convert other forms of energy to mechanical energy have attracted extensive interest for their critical applications in microelectromechanical systems and miniature robotics. Recently, it is discovered that vanadium dioxide (VO2)-based microscale bimorph actuators demonstrate comprehensive superiority of actuation performances, taking the good of the giant theoretical power density (7 J cm(-3)) and ultrafast response (approximate to picosecond) of crystalline VO2, while they still suffer from the intrinsic shortcomings of complex structures. Here, single-crystalline VO2 actuators (SCVAs) that have unique self-bending behavior upon temperature change are reported. This is realized by facilely and precisely controlling the phase structures via lateral stoichiometry-engineering in VO2 nanobeams at the nanoscale level. These SCVAs exhibit remarkable actuation performances and admirable stability, which are equivalent or even superior to the reported VO2-based conventional bimorph actuators. It is noteworthy that the gradual, reversible, and predictable bending of SCVAs enables a precise actuation control of related mechanics, such as the quantitative wind detector and thermal micromechanical claw. This work demonstrates the possibility of this strategy to enable single crystalline actuators excellent performance by internally lateral and gradual strain-engineering.

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