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- W3033751510 abstract "Shape memory polymers may relax to regain original shape through external heat, light, electricity, moisture, or pH. Electroactive polymers have capability to exhibit change in size or shape stimulated by electric field. Conducting polymers have been employed as successful electroactive materials. In this chapter, electroactive polymer coatings have been discussed regarding fabrication, features, and applications. Electroactive polymer coatings have shown light weight, high electrical conductivity, high durability, large bending deformation, rapid response, high stability, low voltage operation, high actuation, and anti-corrosion performance. Electroactive polymeric nanocomposites have been developed using conducting/ nan-conducting polymers and nanoparticles such as graphene, carbon nanotube, and other nanoparticles. Electroactive nanocomposite actuator coatings have also been formed by incorporating nanoparticles in polymeric matrices. Electroactive materials have high surface area and exceptional electrical conductivity owing to beneficial interfacial interaction between electrons of conducting polymers and nanocarbon. Electroactive polymeric nanocomposite coatings exhibited homogeneous distribution of nanocarbon, high electrical conductivity, and electroactive shape recovery performance at low nanofiller loading. These nanocomposite coatings also possess mechanical and thermal stability. Electroactive polymers and nanocomposite coatings have been found beneficial for anti-corrosive coatings, antibacterial coatings, and films for sensors and actuators. More extensive research attempts are recommended to discover future applications of these coatings." @default.
- W3033751510 created "2020-06-12" @default.
- W3033751510 creator A5052000407 @default.
- W3033751510 date "2020-04-15" @default.
- W3033751510 modified "2023-10-03" @default.
- W3033751510 title "Electroactive Polymer Nanocomposite Coating" @default.
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- W3033751510 doi "https://doi.org/10.1002/9781119655145.ch8" @default.
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