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Optimization of active electrodes for novel ionomer-based ionic polymer transducers

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dc.contributor.author Akle, Barbar J.
dc.contributor.author Duncan, Andrew J.
dc.contributor.author Sarles, Stephen A.
dc.contributor.author Leo, Donald J.
dc.contributor.author Long, Timothy E.
dc.contributor.author Bennett, Matthew D.
dc.date.accessioned 2017-06-01T08:39:13Z
dc.date.available 2017-06-01T08:39:13Z
dc.date.copyright 2008 en_US
dc.date.issued 2017-06-01
dc.identifier.uri http://hdl.handle.net/10725/5697
dc.description.abstract This study expands the number of novel synthetic ionomers specifically designed for performance as ionic polymer transducers (IPT) membranes, specifically employing a highly branched sulfonated polysulfone. Control of the synthetic design, characterization, and application of the novel ionomer is intended to allow fundamental study of the effect of polymer branching on electromechanical transduction in IPTs. Fabrication methods were developed based upon the direct application process (DAP) to construct a series of stand-alone electrodes as well as full IPTs with corresponding electrode compositions. Specifically, the volumetric ratio of RuO2 conducting particles to the novel ionomeric matrix was varied from 0 - 45 vol % in the electrodes. Electrical impedance spectroscopy was employed to determine the electrical properties and their variation with electrode composition separate from and in the IPT. A percolation threshold was detected for increased ionic conductivity of the stand-alone electrodes and the full IPTs based on increased loading of conducting particles in the electrodes. An equivalent electrical circuit model was applied to fit the impedance data and implicated interfacial and bulk effects contributing differently to the electrical properties of the electrodes and IPT as a whole. The fabricated IPT series was further tested for bending actuation in response to applied step voltages and represents the first demonstration of IPTs constructed with the DAP process using 100 % novel ionomer in all components. The percolation behavior extended to the bending actuation responses for strain and voltage-normalized strain rate and is useful in optimizing IPT components for maximum performance regardless of the ionomer employed. en_US
dc.language.iso en en_US
dc.publisher SPIE en_US
dc.title Optimization of active electrodes for novel ionomer-based ionic polymer transducers en_US
dc.type Conference Paper / Proceeding en_US
dc.author.school SOE en_US
dc.author.idnumber 200700940 en_US
dc.author.department Industrial And Mechanical Engineering en_US
dc.description.embargo N/A en_US
dc.keywords Electrodes en_US
dc.keywords Polymers en_US
dc.keywords Transducers en_US
dc.keywords Particles en_US
dc.keywords Dielectric spectroscopy en_US
dc.keywords Fabrication en_US
dc.keywords Matrices en_US
dc.identifier.doi http://dx.doi.org/10.1117/12.776575 en_US
dc.identifier.ctation Duncan, A. J., Sarles, S. A., Leo, D. J., Long, T. E., Akle, B. J., & Bennett, M. D. (2008, March). Optimization of active electrodes for novel ionomer-based ionic polymer transducers. In The 15th International Symposium on: Smart Structures and Materials & Nondestructive Evaluation and Health Monitoring (pp. 69271Q-69271Q). International Society for Optics and Photonics. en_US
dc.author.email barbar.akle@lau.edu.lb en_US
dc.conference.date March 09, 2008 en_US
dc.conference.place San Diego, California en_US
dc.identifier.tou http://libraries.lau.edu.lb/research/laur/terms-of-use/articles.php en_US
dc.identifier.url http://proceedings.spiedigitallibrary.org/proceeding.aspx?articleid=832429 en_US
dc.author.affiliation Lebanese American University en_US
dc.relation.numberofseries 6927 en_US
dc.title.volume Electroactive Polymer Actuators and Devices (EAPAD) 2008 en_US


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