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高能量密度聚合物纳米复合材料的界面设计

Interface design for high energy density polymer nanocomposites.

作者信息

Luo Hang, Zhou Xuefan, Ellingford Christopher, Zhang Yan, Chen Sheng, Zhou Kechao, Zhang Dou, Bowen Chris R, Wan Chaoying

机构信息

State Key Laboratory of Powder Metallurgy, Central South University, Changsha, Hunan 410083, China.

International Institute for Nanocomposites Manufacturing (IINM), WMG, University of Warwick, CV4 7AL, UK.

出版信息

Chem Soc Rev. 2019 Aug 21;48(16):4424-4465. doi: 10.1039/c9cs00043g. Epub 2019 Jul 4.

Abstract

This review provides a detailed overview on the latest developments in the design and control of the interface in polymer based composite dielectrics for energy storage applications. The methods employed for interface design in composite systems are described for a variety of filler types and morphologies, along with novel approaches employed to build hierarchical interfaces for multi-scale control of properties. Efforts to achieve a close control of interfacial properties and geometry are then described, which includes the creation of either flexible or rigid polymer interfaces, the use of liquid crystals and developing ceramic and carbon-based interfaces with tailored electrical properties. The impact of the variety of interface structures on composite polarization and energy storage capability are described, along with an overview of existing models to understand the polarization mechanisms and quantitatively assess the potential benefits of different structures for energy storage. The applications and properties of such interface-controlled materials are then explored, along with an overview of existing challenges and practical limitations. Finally, a summary and future perspectives are provided to highlight future directions of research in this growing and important area.

摘要

本综述详细概述了用于储能应用的聚合物基复合电介质中界面设计与控制的最新进展。针对各种填料类型和形态,描述了复合体系中用于界面设计的方法,以及为实现多尺度性能控制而构建分级界面所采用的新方法。接着阐述了为实现对界面性质和几何结构的精确控制所做的努力,其中包括创建柔性或刚性聚合物界面、使用液晶以及开发具有定制电学性质的陶瓷和碳基界面。描述了各种界面结构对复合极化和储能能力的影响,同时概述了现有模型,以理解极化机制并定量评估不同结构对储能的潜在益处。随后探讨了此类界面控制材料的应用和性能,以及现有挑战和实际限制的概述。最后,给出总结和未来展望,以突出这一不断发展且重要领域未来的研究方向。

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