4.8 Article

Superfast-Response and Ultrahigh-Power-Density Electromechanical Actuators Based on Hierarchal Carbon Nanotube Electrodes and Chitosan

Journal

NANO LETTERS
Volume 11, Issue 11, Pages 4636-4641

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl202132m

Keywords

Electromechanical actuators; carbon nanotube; chitosan; resonant enhancement; superfast response; ultrahigh power density

Funding

  1. National Basic Research Program of China [2012CB932302]
  2. National Natural Science foundation of China [90921012, 51172271]
  3. Beijing Municipal Education Commission [YB20108000101]
  4. Chinese Academy of Sciences [KJCX2-YW-M01]
  5. Exotic Nanocarbons
  6. Japan Regional Innovation Strategy Program by Excellence
  7. JST
  8. Shinshu University

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Here we report a novel single-walled carbon nanotube (SWNT) based bimorph electromechanical actuator, which consists of unique as-grown SWNT films as double electrode layers separated by a chitosan electrolyte layer consisting of an ionic liquid. By taking advantage of the special hierarchical structure and the outstanding electrical and mechanical properties of the SWNT film electrodes, our actuators show orders-of-magnitude improvements in many aspects compared to previous ionic electroactive polymer (i-EAP) actuators, including superfast response (19 ms), quite wide available frequency range (dozens to hundreds of Hz), incredible large stress generating rate (1080 MPa/s), and ultrahigh mechanical output power density (244 W/kg). These remarkable achievements together with their facile fabrication, low driving voltage, flexibility, and long durability enable the SWNT-based actuators many applications such as artificial muscles for biomimetic flying insects or robots and flexible deployable reflectors.

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