State Key Laboratory of Molecular Engineering of Polymers Department of Macromolecular Science and Laboratory of Advanced Materials, Fudan University, Shanghai, 200433, P. R. China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Chemistry, Chemical Engineering and Biotechnology, Center for Advanced Low-Dimension Materials, Donghua University, Shanghai, 201620, China.
Small. 2021 Jul;17(26):e2101220. doi: 10.1002/smll.202101220. Epub 2021 Jun 8.
A smart ionic skin patch with on-demand detachable adhesion has been developed as human-machine interface for physiological signal monitoring. In spite of the multifunctions demonstrated by existing ionic skin, it is still difficult to distinguish different signals simultaneously. Moreover, the secondary damages to the tissues are often overlooked when the adhesive materials are removing from the wound. Herein, a multifunctional biomimetic hydrogel with temperature, mechanical, electrical, and pH response is developed. This hydrogel is designed by in situ polymerizing of hydrophilic anion monomers in a natural cationic polysaccharide to construct multifunctional biomimetic ionic channel. Due to the reversible physical cross-linked network and thermosensitivity, the mechanical properties, adhesion, and visual effect of the hydrogel can be tuned by changing hydrogen bonding density via phase transition, thus making it an excellent biosafe material for wearable device. The hydrogel is utilized as skin patch intended for monitoring physiological signals stimulated by physical and chemical changes involving pressure, temperature, pH value, and electrocardiograph. Especially, this ionic skin patch can recognize temperature change signals precisely either in broad or extremely narrow temperature range. This smart skin patch can even recognize the pressure and temperature signals in real time and differentiate the signals simultaneously.
一种具有按需可拆卸粘性的智能离子皮肤贴片已被开发为用于生理信号监测的人机界面。尽管现有的离子皮肤已经展示了多种功能,但仍然很难同时区分不同的信号。此外,在从伤口上移除粘性材料时,往往会忽略对组织的二次损伤。在此,开发了一种具有温度、机械、电和 pH 响应的多功能仿生水凝胶。该水凝胶通过在天然阳离子多糖中就地聚合亲水性阴离子单体来设计,以构建多功能仿生离子通道。由于具有可逆的物理交联网络和温敏性,通过氢键密度的改变可以通过相转变来调节水凝胶的机械性能、粘附性和视觉效果,从而使其成为可用于可穿戴设备的优秀生物安全材料。该水凝胶用作皮肤贴片,用于监测涉及压力、温度、pH 值和心电图的物理和化学变化所刺激的生理信号。特别是,这种离子皮肤贴片可以在较宽或极窄的温度范围内精确识别温度变化信号。这种智能皮肤贴片甚至可以实时识别压力和温度信号,并同时区分这些信号。