Xue Jie, Liu Dan, Li Da, Hong Tianzeng, Li Chuanbing, Zhu Zifu, Sun Yuxuan, Gao Xiaobo, Guo Lei, Shen Xi, Ma Pengcheng, Zheng Qingbin
School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, Guangdong, 518172, China.
Department of Aeronautical and Aviation Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong, 999077, China.
Adv Mater. 2025 Jan;37(2):e2312596. doi: 10.1002/adma.202312596. Epub 2024 Apr 3.
Soft electronics are garnering significant attention due to their wide-ranging applications in artificial skin, health monitoring, human-machine interaction, artificial intelligence, and the Internet of Things. Various soft physical sensors such as mechanical sensors, temperature sensors, and humidity sensors are the fundamental building blocks for soft electronics. While the fast growth and widespread utilization of electronic devices have elevated life quality, the consequential electromagnetic interference (EMI) and radiation pose potential threats to device precision and human health. Another substantial concern pertains to overheating issues that occur during prolonged operation. Therefore, the design of multifunctional soft electronics exhibiting excellent capabilities in sensing, EMI shielding, and thermal management is of paramount importance. Because of the prominent advantages in chemical stability, electrical and thermal conductivity, and easy functionalization, new carbon materials including carbon nanotubes, graphene and its derivatives, graphdiyne, and sustainable natural-biomass-derived carbon are particularly promising candidates for multifunctional soft electronics. This review summarizes the latest advancements in multifunctional soft electronics based on new carbon materials across a range of performance aspects, mainly focusing on the structure or composite design, and fabrication method on the physical signals monitoring, EMI shielding, and thermal management. Furthermore, the device integration strategies and corresponding intriguing applications are highlighted. Finally, this review presents prospects aimed at overcoming current barriers and advancing the development of state-of-the-art multifunctional soft electronics.
柔性电子器件因其在人造皮肤、健康监测、人机交互、人工智能和物联网等领域的广泛应用而备受关注。各种柔性物理传感器,如机械传感器、温度传感器和湿度传感器,是柔性电子器件的基本组成部分。虽然电子设备的快速发展和广泛应用提高了生活质量,但随之而来的电磁干扰(EMI)和辐射对设备精度和人类健康构成了潜在威胁。另一个重大问题是长时间运行期间出现的过热问题。因此,设计具有优异传感、EMI屏蔽和热管理能力的多功能柔性电子器件至关重要。由于碳纳米管、石墨烯及其衍生物、石墨炔和可持续的天然生物质衍生碳等新型碳材料在化学稳定性、导电性和导热性以及易于功能化方面具有突出优势,它们是多功能柔性电子器件特别有前景的候选材料。本文综述了基于新型碳材料的多功能柔性电子器件在一系列性能方面的最新进展,主要关注物理信号监测、EMI屏蔽和热管理方面的结构或复合材料设计以及制造方法。此外,还强调了器件集成策略和相应的有趣应用。最后,本文展望了克服当前障碍并推动先进多功能柔性电子器件发展的前景。