• DocumentCode
    1155333
  • Title

    The relation of conducting polymer actuator material properties to performance

  • Author

    Madden, Peter G A ; Madden, John D W ; Anquetil, Patrick A. ; Vandesteeg, Nathan A. ; Hunter, Ian W.

  • Author_Institution
    Dept. of Organismic & Evolutionary Biol., Harvard Univ., Cambridge, MA, USA
  • Volume
    29
  • Issue
    3
  • fYear
    2004
  • fDate
    7/1/2004 12:00:00 AM
  • Firstpage
    696
  • Lastpage
    705
  • Abstract
    Materials used in many branches of engineering are of low molecular weight and not flexible. As we develop more sophisticated engineering devices one can look to nature for inspiration and advocate the use of high molecular weight flexible materials. Conducting polymer actuators will soon be used in applications where traditional low molecular weight actuator systems are incapable of mimicking the functionality provided by nature´s muscle. To incorporate conducting polymer actuators into engineering systems it is of high importance to not only model and predict the behavior of these actuators but also understand the connection of material properties to performance. In this paper, the importance of fundamental actuation mechanisms and the fundamental material properties of conducting polymer muscles such as ionic diffusion rate, electrochemical operating window, strain to charge ratio, ratio of charge carried by positive versus negative ions, and salt draining are discussed and their effect on performance is demonstrated. The relevance of engineered geometry to the performance of conducting polymer muscles is also shown. Our understanding of what limits the performance of existing conducting polymers actuators provides directions for the improvement of the next generation of conducting polymer actuators.
  • Keywords
    conducting polymers; electric actuators; materials properties; actuation mechanisms; artificial muscle; conducting polymer actuator material; diffusive elastic model; electrochemical operating window; engineered geometry; ionic diffusion rate; material properties; salt draining; strain to charge ratio; Actuators; Biological materials; Biomimetics; Capacitive sensors; Conducting materials; Material properties; Muscles; Polymers; Predictive models; Systems engineering and theory; 65; Actuators; artificial muscle; conducting polymers; diffusive elastic model;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/JOE.2004.833139
  • Filename
    1353423