Xu Kaichen, Cai Zimo, Luo Huayu, Lu Yuyao, Ding Chenliang, Yang Geng, Wang Lili, Kuang Cuifang, Liu Jingquan, Yang Huayong
State Key Laboratory of Fluid Power & Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou 310058, P. R. China.
State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310058, P. R. China.
ACS Nano. 2024 Oct 1;18(39):26435-26476. doi: 10.1021/acsnano.4c09062. Epub 2024 Sep 17.
The burgeoning demands for health care and human-machine interfaces call for the next generation of multifunctional integrated sensor systems with facile fabrication processes and reliable performances. Laser-induced graphene (LIG) with highly tunable physical and chemical characteristics plays vital roles in developing versatile skin-like flexible or stretchable sensor systems. This Progress Report presents an in-depth overview of the latest advances in LIG-based techniques in the applications of flexible sensors. First, the merits of the LIG technique are highlighted especially as the building blocks for flexible sensors, followed by the description of various fabrication methods of LIG and its variants. Then, the focus is moved to diverse LIG-based flexible sensors, including physical sensors, chemical sensors, and electrophysiological sensors. Mechanisms and advantages of LIG in these scenarios are described in detail. Furthermore, various representative paradigms of integrated LIG-based sensor systems are presented to show the capabilities of LIG technique for multipurpose applications. The signal cross-talk issues are discussed with possible strategies. The LIG technology with versatile functionalities coupled with other fabrication strategies will enable high-performance integrated sensor systems for next-generation skin electronics.
对医疗保健和人机界面的需求不断增长,这就需要下一代具有简便制造工艺和可靠性能的多功能集成传感器系统。具有高度可调物理和化学特性的激光诱导石墨烯(LIG)在开发多功能类皮肤柔性或可拉伸传感器系统中起着至关重要的作用。本进展报告深入概述了基于LIG的技术在柔性传感器应用中的最新进展。首先,重点介绍了LIG技术的优点,特别是作为柔性传感器的构建块,随后描述了LIG及其变体的各种制造方法。然后,将重点转移到各种基于LIG的柔性传感器,包括物理传感器、化学传感器和电生理传感器。详细描述了LIG在这些场景中的机制和优势。此外,还介绍了各种基于LIG的集成传感器系统的代表性范例,以展示LIG技术在多用途应用中的能力。讨论了信号串扰问题及可能的策略。具有多功能的LIG技术与其他制造策略相结合,将为下一代皮肤电子学实现高性能集成传感器系统。