Electroactive polymer actuators as artificial muscles: are they ready for bioinspired applications?

被引:202
作者
Carpi, Federico [1 ,2 ]
Kornbluh, Roy
Sommer-Larsen, Peter [3 ]
Alici, Gursel [4 ,5 ]
机构
[1] Univ Pisa, Interdept Res Ctr E Piaggio, I-56100 Pisa, Italy
[2] Technol & Life Inst, Pisa, Italy
[3] Tech Univ Denmark, Riso Natl Lab Sustainable Energy, Lyngby, Denmark
[4] Univ Wollongong, Sch Mech Mat & Mechatron Engn, Wollongong, NSW 2522, Australia
[5] Univ Wollongong, ARC Ctr Excellence Electromat Sci, Wollongong, NSW 2522, Australia
基金
澳大利亚研究理事会;
关键词
METAL COMPOSITES; BIOMIMETIC SENSORS; GEL; BEHAVIOR; MODEL; ELECTROSTRICTION; STIMULI;
D O I
10.1088/1748-3182/6/4/045006
中图分类号
T [工业技术];
学科分类号
120111 [工业工程];
摘要
Electroactive polymer (EAP) actuators are electrically responsive materials that have several characteristics in common with natural muscles. Thus, they are being studied as 'artificial muscles' for a variety of biomimetic motion applications. EAP materials are commonly classified into two major families: ionic EAPs, activated by an electrically induced transport of ions and/or solvent, and electronic EAPs, activated by electrostatic forces. Although several EAP materials and their properties have been known for many decades, they have found very limited applications. Such a trend has changed recently as a result of an effective synergy of at least three main factors: key scientific breakthroughs being achieved in some of the existing EAP technologies; unprecedented electromechanical properties being discovered in materials previously developed for different purposes; and higher concentration of efforts for industrial exploitation. As an outcome, after several years of basic research, today the EAP field is just starting to undergo transition from academia into commercialization, with significant investments from large companies. This paper presents a brief overview on the full range of EAP actuator types and the most significant areas of interest for applications. It is hoped that this overview can instruct the reader on how EAPs can enable bioinspired motion systems.
引用
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页数:10
相关论文
共 89 条
[1]
Stimuli-responsive polymer gels [J].
Ahn, Suk-Kyun ;
Kasi, Rajeswari M. ;
Kim, Seong-Cheol ;
Sharma, Nitin ;
Zhou, Yuxiang .
SOFT MATTER, 2008, 4 (06) :1151-1157
[2]
Establishment of a biomimetic device based on tri-layer polymer actuators-propulsion fins [J].
Alici, Gursel ;
Spinks, Geoffrey ;
Huynh, Nam N. ;
Sarmadi, Laleh ;
Minato, Rick .
BIOINSPIRATION & BIOMIMETICS, 2007, 2 (02) :S18-S30
[3]
Enhancement of actuation ability of ionic-type conducting polymer actuators using metal ion implantation [J].
Alici, Gursel ;
Punning, Andres ;
Shea, Herbert R. .
SENSORS AND ACTUATORS B-CHEMICAL, 2011, 157 (01) :72-84
[4]
Normal stiffness calibration of microfabricated tri-layer conducting polymer actuators [J].
Alici, Gursel ;
Higgins, Michael J. .
SMART MATERIALS & STRUCTURES, 2009, 18 (06)
[5]
Conducting polymer microactuators operating in air [J].
Alici, Gursel ;
Devaud, Valerie ;
Renaud, Philippe ;
Spinks, Geoff .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2009, 19 (02)
[6]
Giant-Stroke, Superelastic Carbon Nanotube Aerogel Muscles [J].
Aliev, Ali E. ;
Oh, Jiyoung ;
Kozlov, Mikhail E. ;
Kuznetsov, Alexander A. ;
Fang, Shaoli ;
Fonseca, Alexandre F. ;
Ovalle, Raquel ;
Lima, Marcio D. ;
Haque, Mohammad H. ;
Gartstein, Yuri N. ;
Zhang, Mei ;
Zakhidov, Anvar A. ;
Baughman, Ray H. .
SCIENCE, 2009, 323 (5921) :1575-1578
[7]
BENDING OF POLYELECTROLYTE MEMBRANE-PLATINUM COMPOSITES BY ELECTRIC STIMULI .1. RESPONSE CHARACTERISTICS TO VARIOUS WAVE-FORMS [J].
ASAKA, K ;
OGURO, K ;
NISHIMURA, Y ;
MIZUHATA, M ;
TAKENAKA, H .
POLYMER JOURNAL, 1995, 27 (04) :436-440
[8]
Free-Locomotion of Underwater Vehicles Actuated by Ionic Polymer Metal Composites [J].
Aureli, Matteo ;
Kopman, Vladislav ;
Porfiri, Maurizio .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2010, 15 (04) :603-614
[9]
Challenges to the application of IPMC as actuators of planetary mechanisms [J].
Bar-Cohen, Y ;
Leary, S ;
Yavrouian, A ;
Oguro, K ;
Tadokoro, S ;
Harrison, J ;
Smith, J ;
Su, J .
SMART STRUCTURES AND MATERIALS 2000: ELECTROACTIVE POLYMER ACTUATORS AND DEVICES (EAPAD), 2000, 3987 :140-146
[10]
Bar-Cohen Y, 2009, P SPIE NEWSROOM, DOI [10.1117/2.1200909.1738, DOI 10.1117/2.1200909.1738]