State Key Laboratory of Mechanical System and Vibration, Interdisciplinary Research Centre, and MOE Key Laboratory for Power Machinery and Engineering, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Materials Research Institute and Department of Materials Science and Engineering, The Pennsylvania State University, University Park, PA 16802, USA.
Science. 2023 May 12;380(6645):eadg0902. doi: 10.1126/science.adg0902.
Ferroelectric materials are currently some of the most widely applied material systems and are constantly generating improved functions with higher efficiencies. Advancements in poly(vinylidene fluoride) (PVDF)-based polymer ferroelectrics provide flexural, coupling-efficient, and multifunctional material platforms for applications that demand portable, lightweight, wearable, and durable features. We highlight the recent advances in fluoropolymer ferroelectrics, their energetic cross-coupling effects, and emerging technologies, including wearable, highly efficient electromechanical actuators and sensors, electrocaloric refrigeration, and dielectric devices. These developments reveal that the molecular and nanostructure manipulations of the polarization-field interactions, through facile defect biasing, could introduce enhancements in the physical effects that would enable the realization of multisensory and multifunctional wearables for the emerging immersive virtual world and smart systems for a sustainable future.
铁电材料目前是应用最广泛的材料体系之一,其功能不断得到改善,效率也越来越高。聚偏氟乙烯(PVDF)基聚合物铁电体的进步为需要具有便携、轻量、可穿戴和耐用特性的应用提供了弯曲、高效耦合和多功能的材料平台。我们重点介绍了氟聚合物铁电体的最新进展、它们的能量交叉耦合效应以及新兴技术,包括可穿戴的、高效的机电致动器和传感器、电热制冷和介电器件。这些发展表明,通过简单的缺陷偏置对极化场相互作用的分子和纳米结构进行操控,可以增强物理效应,从而实现用于新兴沉浸式虚拟世界的多感觉和多功能可穿戴设备以及用于可持续未来的智能系统。