Department of Chemical Engineering, Monash University, Clayton, VIC, 3800, Australia.
Department of Biochemistry & Molecular Biology, Biomedicine Discovery Institute, Clayton, VIC, 3800, Australia.
Adv Healthc Mater. 2021 Sep;10(17):e2100577. doi: 10.1002/adhm.202100577. Epub 2021 May 21.
In spite of advances in electronics and internet technologies, current healthcare remains hospital-centred. Disruptive technologies are required to translate state-of-art wearable devices into next-generation patient-centered diagnosis and therapy. In this review, recent advances in the emerging field of soft wearable materials and devices are summarized. A prerequisite for such future healthcare devices is the need of novel materials to be mechanically compliant, electrically conductive, and biologically compatible. It is begun with an overview of the two viable design strategies reported in the literatures, which is followed by description of state-of-the-art wearable healthcare devices for monitoring physical, electrophysiological, chemical, and biological signals. Self-powered wearable bioenergy devices are also covered and sensing systems, as well as feedback-controlled wearable closed-loop biodiagnostic and therapy systems. Finally, it is concluded with an overall summary and future perspective.
尽管电子和互联网技术取得了进步,但当前的医疗保健仍然以医院为中心。需要颠覆性技术将最先进的可穿戴设备转化为下一代以患者为中心的诊断和治疗。在这篇综述中,总结了新兴软可穿戴材料和设备领域的最新进展。此类未来医疗保健设备的前提是需要新型材料,使其具有机械顺应性、导电性和生物相容性。本文首先概述了文献中报道的两种可行的设计策略,然后介绍了用于监测物理、电生理、化学和生物信号的最先进的可穿戴医疗保健设备。还涵盖了自供电可穿戴生物能源设备以及感测系统以及反馈控制的可穿戴闭环生物诊断和治疗系统。最后,对整体进行了总结和展望。