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用于敏化微波驱动和自供电运动传感的具有增强电磁能量收集功能的MXene杂化聚合物

MXene Hybridized Polymer with Enhanced Electromagnetic Energy Harvest for Sensitized Microwave Actuation and Self-Powered Motion Sensing.

作者信息

Wang Yu-Ze, Wang Yu-Chang, Liu Ting-Ting, Zhao Quan-Liang, Li Chen-Sha, Cao Mao-Sheng

机构信息

School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, People's Republic of China.

School of Materials Science and Engineering, Peking University, Beijing, 100871, People's Republic of China.

出版信息

Nanomicro Lett. 2024 Nov 18;17(1):65. doi: 10.1007/s40820-024-01578-z.

Abstract

Polymeric microwave actuators combining tissue-like softness with programmable microwave-responsive deformation hold great promise for mobile intelligent devices and bionic soft robots. However, their application is challenged by restricted electromagnetic sensitivity and intricate sensing coupling. In this study, a sensitized polymeric microwave actuator is fabricated by hybridizing a liquid crystal polymer with TiCT (MXene). Compared to the initial counterpart, the hybrid polymer exhibits unique space-charge polarization and interfacial polarization, resulting in significant improvements of 230% in the dielectric loss factor and 830% in the apparent efficiency of electromagnetic energy harvest. The sensitized microwave actuation demonstrates as the shortened response time of nearly 10 s, which is merely 13% of that for the initial shape memory polymer. Moreover, the ultra-low content of MXene (up to 0.15 wt%) benefits for maintaining the actuation potential of the hybrid polymer. An innovative self-powered sensing prototype that combines driving and piezoelectric polymers is developed, which generates real-time electric potential feedback (open-circuit potential of ~ 3 mV) during actuation. The polarization-dominant energy conversion mechanism observed in the MXene-polymer hybrid structure furnishes a new approach for developing efficient electromagnetic dissipative structures and shows potential for advancing polymeric electromagnetic intelligent devices.

摘要

将类似组织的柔软性与可编程微波响应变形相结合的聚合物微波致动器,在移动智能设备和仿生软机器人领域具有巨大潜力。然而,其应用受到电磁灵敏度受限和传感耦合复杂的挑战。在本研究中,通过将液晶聚合物与TiCT(MXene)杂交制备了一种敏化聚合物微波致动器。与初始材料相比,这种杂化聚合物表现出独特的空间电荷极化和界面极化,导致介电损耗因子显著提高230%,电磁能量收集的表观效率提高830%。敏化微波致动表现为响应时间缩短至近10秒,仅为初始形状记忆聚合物响应时间的13%。此外,超低含量的MXene(高达0.15 wt%)有利于维持杂化聚合物的致动潜力。开发了一种创新的自供电传感原型,它结合了驱动聚合物和压电聚合物,在致动过程中产生实时电势反馈(开路电势约为3 mV)。在MXene-聚合物杂化结构中观察到的极化主导能量转换机制,为开发高效电磁耗散结构提供了一种新方法,并显示出推进聚合物电磁智能设备的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/990c/11573944/bcb14ef4871f/40820_2024_1578_Fig1_HTML.jpg

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