Lei Zhouyue, Xu Wentao, Zhang Guogao
John A. Paulson School of Engineering and Applied Sciences Harvard University Cambridge Massachusetts USA.
Smart Med. 2023 Feb 12;2(1):e20220026. doi: 10.1002/SMMD.20220026. eCollection 2023 Feb.
Ionic skins are developed to mimic the mechanical properties and functions of natural skins. They have demonstrated substantial advantages to serve as the crucial interface to bridge the gap between humans and machines. The first-generation ionic skin is a stretchable capacitor comprising hydrogels as the ionic conductors and elastomers as the dielectrics, and realizes pressure and strain sensing through the measurement of the capacitance. Subsequent advances have been made to improve the mechanical properties of ionic skins and import diverse functions. For example, ultrahigh stretchability, strong interfacial adhesion, self-healing, moisturizing ability, and various sensing capabilities have been achieved separately or simultaneously. Most ionic skins are attached to natural skins to monitor bio-electrical signals continuously. Ionic skins have also been found with significant potential to serve as a smart drug-containing reservoir, which can release drugs spatially, temporally, and in a controllable way. Herein, this review focuses on the design and fabrication of ionic skins, and their applications related to smart medicine. Moreover, challenges and opportunities are also discussed. It is hoped that the development of bio-inspired ionic skins will provide a paradigm shift for self-diagnosis and healthcare.
离子皮肤的开发旨在模仿天然皮肤的机械性能和功能。它们已展现出作为连接人类与机器之间关键界面的显著优势。第一代离子皮肤是一种可拉伸电容器,由水凝胶作为离子导体、弹性体作为电介质组成,并通过测量电容实现压力和应变传感。随后取得了进展以改善离子皮肤的机械性能并引入多种功能。例如,分别或同时实现了超高拉伸性、强界面粘附性、自愈性、保湿能力以及各种传感能力。大多数离子皮肤附着在天然皮肤上以持续监测生物电信号。人们还发现离子皮肤有潜力作为一种智能含药储库,能够在空间、时间和可控方式下释放药物。在此,本综述聚焦于离子皮肤的设计与制造及其与智能医学相关的应用。此外,还讨论了挑战与机遇。希望受生物启发的离子皮肤的发展将为自我诊断和医疗保健带来范式转变。