Zhou Lingtong, Li Yuanchang, Xiao Jingcheng, Chen Shu-Wei, Tu Qin, Yuan Mao-Sen, Wang Jinyi
College of Chemistry & Pharmacy, Northwest A&F University, Yangling, Shaanxi 712100, P. R. China.
Anal Chem. 2023 Feb 21;95(7):3811-3820. doi: 10.1021/acs.analchem.2c05118. Epub 2023 Feb 6.
Interest in wearable and stretchable multifunctional sensors has grown rapidly in recent years. The sensing elements must accurately detect external stimuli to expand their applicability as sensors. However, the sensor's self-healing and adhesion to a target object have been major challenges in developing such practical and versatile devices. In this study, we prepared a hydrogel (LM-SA-PAA) composed of liquid metal (LM), sodium alginate (SA), and poly(acrylic acid) (PAA) with ultrastretchable, excellent self-healing, self-adhesive, and high-sensitivity sensing capabilities that enable the conformal contact between the sensor and skin even during dynamic movements. The excellent self-healing performance of the hydrogel stems from its double cross-linked networks, including physical and chemical cross-linked networks. The physical cross-link formed by the ionic interaction between the carboxyl groups of PAA and gallium ions provide the hydrogel with reversible autonomous repair properties, whereas the covalent bond provides the hydrogel with a stable and strong chemical network. Alginate forms a microgel shell around LM nanoparticles via the coordination of its carboxyl groups with Ga ions. In addition to offering exceptional colloidal stability, the alginate shell has sufficient polar groups, ensuring that the hydrogel adheres to diverse substrates. Based on the efficient electrical pathway provided by the LM, the hydrogel exhibited strain sensitivity and enabled the detection of various human motions and electrocardiographic monitoring. The preparation method is simple and versatile and can be used for the low-cost fabrication of multifunctional sensors, which have broad application prospects in human-machine interface compatibility and medical monitoring.
近年来,对可穿戴和可拉伸多功能传感器的兴趣迅速增长。传感元件必须准确检测外部刺激,以扩大其作为传感器的适用性。然而,传感器的自我修复能力以及与目标物体的粘附性一直是开发此类实用且多功能设备的主要挑战。在本研究中,我们制备了一种由液态金属(LM)、海藻酸钠(SA)和聚丙烯酸(PAA)组成的水凝胶(LM-SA-PAA),它具有超拉伸性、出色的自我修复能力、自粘性和高灵敏度传感能力,即使在动态运动过程中也能使传感器与皮肤实现贴合接触。水凝胶出色的自我修复性能源于其双重交联网络,包括物理交联网络和化学交联网络。由PAA的羧基与镓离子之间的离子相互作用形成的物理交联赋予水凝胶可逆的自主修复特性,而共价键则为水凝胶提供了稳定且强大的化学网络。海藻酸盐通过其羧基与Ga离子的配位作用在LM纳米颗粒周围形成微凝胶壳。除了提供出色的胶体稳定性外,海藻酸盐壳还具有足够的极性基团,确保水凝胶能粘附在各种基材上。基于LM提供的高效导电路径,水凝胶表现出应变敏感性,能够检测各种人体运动并进行心电图监测。该制备方法简单且通用,可用于低成本制造多功能传感器,在人机界面兼容性和医疗监测方面具有广阔的应用前景。