Hysteresis in a carbon nanotube based electroactive polymer microfiber actuator: Numerical Modeling
- Authors
- Sohn, Kiwon; Shin, Su Ryon; Park, Sang Jun; Kim, Seon Jeong; Yi, Byung-Ju; Han, Seog Young; Kim, Sun I.
- Issue Date
- Nov-2007
- Publisher
- American Scientific Publishers
- Keywords
- carbon nanotube; polyaniline; electroactive polymer actuator; hysteresis
- Citation
- Journal of Nanoscience and Nanotechnology, v.7, no.11, pp 3974 - 3979
- Pages
- 6
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Nanoscience and Nanotechnology
- Volume
- 7
- Number
- 11
- Start Page
- 3974
- End Page
- 3979
- URI
- https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/43307
- DOI
- 10.1166/jnn.2007.072
- ISSN
- 1533-4880
1533-4899
- Abstract
- Hysteretic behavior is an important consideration for smart electroactive polymer actuators in a wide variety of nano/micro-scale applications. We prepared an electroactive polymer actuator in the form of a microfiber, based on single-wall carbon nanotubes and polyaniline, and investigated the hysteretic characteristics of the actuator under electrical potential switching in a basic electrolyte solution. For actuation experiments, we measured the variation of the length of the carbon-nanotube-based electroactive polymer actuator, using an Aurora Scientific Inc. 300B Series muscle lever arm system, while electrical potentials ranging from 0.2 V to 0.65 V were applied. Based on the classical Preisach hysteresis model, we presented and validated a numerical model that described the hysteretic behavior of the carbon-nanotube-based electroactive polymer actuator. Inverse hysteretic behavior was also simulated using the model to demonstrate its capability to predict an input from a desired output. This numerical model of hysteresis could be an effective approach to micro-scale control of carbon-nanotube-based electroactive polymer actuators in potential applications.
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