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Volume 1,Issue 6

Fall 2024

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20 August 2024

基于复合改性提升介电弹性体驱动性能的研究进展

国通 丁1 祥鸿 吕1
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1 西安石油大学, 中国
© 2024 by the Author. Licensee Art and Design, USA. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution -Noncommercial 4.0 International License (CC BY-NC 4.0) ( https://creativecommons.org/licenses/by-nc/4.0/ )
Abstract

介电弹性体(DEs)因其优异的电致变形性能广泛应用于柔性驱动器、人工肌肉和传感器等领域,但仍面临力学强
度、稳定性和耐用性等问题。为提升驱动性能和使用寿命,复合改性技术(如导电填料复合、纳米复合、纤维增强
复合和交联改性)被广泛采用,这些方法有效改善了DEs 的电致应变、力学性能和耐久性。本文综述了复合改性策
略在提升DEs 驱动性能方面的研究进展,分析了不同改性方法的机制,并展望了未来的发展方向与挑战。

Keywords
介电弹性体
复合材料
驱动性能
References

[1]Yang L, Wang H, Zhang D, et al. Large deformation, high energy density dielectric elastomer actuators: Principles, factors, optimization, applications, and prospects[J].
Chemical Engineering Journal, 2024: 151402.
[2]Pelrine R, Kornbluh R, Kofod G. High-Strain Actuator Materials Based on Dielectric Elastomers [J]. Advanced Materials, 2000, 12(16): 1223-5.
[3] Lu G, Zhang Y, Zhang J, et al. Trade ‐offs between ion ‐conducting and mechanical properties: The case of polyacrylate electrolytes[J]. Carbon Energy, 2023, 5(2):
e287.
[4] Delavarde A, Savin G, Derkenne P, et al. Sustainable polyurethanes: toward new cutting-edge opportunities[J]. Progress in Polymer Science, 2024: 101805.
[5] Seo J S, Park K T, Oh S M, et al. Nano-Sized rGO-Encapsulated TiO2 Nanowire-Filled PDMS cone type dielectric elastomer actuator operating at low applied electric
field[J]. Chemical Engineering Journal, 2024, 494: 152801.
[6] Feng Z, Feng G, Yue X, et al. Poly (thioether) grafted Ti3C2Tx MXenes: new dielectric elastomer nanocomposites with high area strain at low driving voltage[J]. European
Polymer Journal, 2023, 188: 111945.
[7] Li F, Wang L, Gao L, et al. Reducing Dielectric Loss of High ‐Dielectric ‐Constant Elastomer via Rigid Short ‐Chain Crosslinking[J]. Advanced Materials, 2024, 36(47):
2411082.

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