Huang Congxi, Chen Guorui, Nashalian Ardo, Chen Jun
Department of Bioengineering, University of California, Los Angeles, Los Angeles, CA 90095, USA.
Nanoscale. 2021 Feb 4;13(4):2065-2081. doi: 10.1039/d0nr07770d.
Chemical sensors allow for continuous detection and analysis of underexplored molecules in the human body and the surroundings and have promising applications in human healthcare and environmental protection. With the increasing number of chemical sensors and their wide-range distribution, developing a continuous, sustainable, and pervasive power supply is vitally important but an unmet scientific challenge to perform chemical sensing. Self-powered chemical sensing via triboelectric nanogenerators (TENGs) could be a promising approach to this critical situation. TENGs can convert mechanical triggers from the surroundings into usable electrical signals for chemical sensing in a self-powered and environment-friendly manner. Moreover, their simple structure, low probability of failure, and wide choice of materials distinguish them from other chemical sensing technologies. This review article discusses the working principles of TENGs and their applications in chemical sensing with respect to the role of TENGs as either a self-powered sensor or a power source for existing chemical sensors. Advances in materials innovation and nanotechnology to optimize the chemical sensing performances are discussed and emphasized. Finally, the current challenges and future prospect of TENG enabled self-powered chemical sensing are discussed to promote interdisciplinary field development and revolutions.
化学传感器能够对人体和周围环境中尚未充分探索的分子进行连续检测和分析,在人类医疗保健和环境保护方面具有广阔的应用前景。随着化学传感器数量的不断增加及其广泛分布,开发一种持续、可持续且普遍存在的电源对于进行化学传感至关重要,但这是一项尚未解决的科学挑战。通过摩擦纳米发电机(TENG)实现自供电化学传感可能是应对这一关键情况的一种有前途的方法。TENG能够以自供电且环保的方式将来自周围环境的机械触发转换为用于化学传感的可用电信号。此外,它们结构简单、故障概率低且材料选择广泛,这使其有别于其他化学传感技术。本文综述讨论了TENG的工作原理及其在化学传感中的应用,涉及TENG作为自供电传感器或现有化学传感器电源的作用。文中讨论并强调了在材料创新和纳米技术方面为优化化学传感性能所取得的进展。最后,探讨了TENG自供电化学传感当前面临的挑战和未来前景,以促进跨学科领域的发展和变革。