School of Materials Science and Engineering, The University of New South Wales, Sydney, NSW, 2052, Australia.
School of Chemical Engineering, The University of New South Wales, Sydney, NSW, 2052, Australia.
Adv Mater. 2024 Oct;36(42):e2403791. doi: 10.1002/adma.202403791. Epub 2024 May 31.
Self-powered wearable devices with integrated energy supply module and sensitive sensors have significantly blossomed for continuous monitoring of human activity and the surrounding environment in healthcare sectors. The emerging of MXene-based materials has brought research upsurge in the fields of energy and electronics, owing to their excellent electrochemical performance, large surface area, superior mechanical performance, and tunable interfacial properties, where their performance can be further boosted via multi-interface engineering. Herein, a comprehensive review of recent progress in MXenes for self-powered wearable devices is discussed from the aspects of multi-interface engineering. The fundamental properties of MXenes including electronic, mechanical, optical, and thermal characteristics are discussed in detail. Different from previous review works on MXenes, multi-interface engineering of MXenes from termination regulation to surface modification and their impact on the performance of materials and energy storage/conversion devices are summarized. Based on the interfacial manipulation strategies, potential applications of MXene-based self-powered wearable devices are outlined. Finally, proposals and perspectives are provided on the current challenges and future directions in MXene-based self-powered wearable devices.
自供电可穿戴设备结合集成能源供应模块和敏感传感器,在医疗保健领域中对人体活动和周围环境的连续监测具有重要意义。基于 MXene 的材料的出现带来了能源和电子领域的研究热潮,这要归功于它们卓越的电化学性能、大的表面积、优异的机械性能和可调节的界面特性,通过多接口工程可以进一步提高它们的性能。本文从多接口工程的角度讨论了 MXenes 在自供电可穿戴设备方面的最新进展。详细讨论了 MXenes 的基本性质,包括电子、机械、光学和热特性。与之前关于 MXenes 的综述工作不同,总结了 MXenes 从端基调控到表面修饰的多接口工程及其对材料和储能/转换器件性能的影响。基于界面操控策略,概述了基于 MXene 的自供电可穿戴设备的潜在应用。最后,针对基于 MXene 的自供电可穿戴设备目前的挑战和未来的发展方向提出了建议和展望。