Chen Zehua, Zhang Feng, Qian Xiaoyan, Zhao Ganggang, Yan Zheng
Department of Chemical and Biomedical Engineering, University of Missouri, Columbia, MO 65211, USA.
Department of Mechanical & Aerospace Engineering, University of Missouri, Columbia, MO 65211, USA.
Mater Horiz. 2025 Jul 2. doi: 10.1039/d5mh00700c.
Skin-interfaced bioelectronics are particularly susceptible to motion artifacts, and their increasingly miniaturized integrated circuits are mechanically fragile and prone to damage from external forces. These limitations hinder their reliability for long-term, continuous monitoring of physiological signals. Emerging selective-damping materials provide a promising route to overcome these limitations by absorbing and dissipating mechanical vibrations, thereby enhancing stability in prolonged wear. This review begins by outlining the challenges that motion artifacts pose for soft bioelectronic devices and the current mitigation strategies, followed by an introduction of emerging damping material design approaches tailored to the requirements of skin-interfaced bioelectronics. It further highlights the application of selective-damping materials in soft bioelectronics, with an emphasis on biosensing (electrophysiological and electrochemical signals) and mechanical shock protection. Lastly, several challenges that need to be addressed are discussed before the practical deployment of soft bioelectronics integrated with selective-damping materials.
皮肤接口生物电子器件特别容易受到运动伪影的影响,而且其日益小型化的集成电路机械性能脆弱,容易受到外力损坏。这些限制阻碍了它们对生理信号进行长期、连续监测的可靠性。新兴的选择性阻尼材料通过吸收和消散机械振动提供了一条克服这些限制的有前景的途径,从而提高长时间佩戴时的稳定性。本综述首先概述运动伪影对软生物电子器件构成的挑战以及当前的缓解策略,接着介绍针对皮肤接口生物电子器件的要求量身定制的新兴阻尼材料设计方法。它进一步强调了选择性阻尼材料在软生物电子器件中的应用,重点是生物传感(电生理和电化学信号)以及机械冲击保护。最后,在实际部署集成有选择性阻尼材料的软生物电子器件之前,讨论了几个需要解决的挑战。