Liu Yubing, Yu He, Zhou Guanya, Peng Mugen
School of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing, 100876, China.
ACS Sens. 2024 Sep 27;9(9):4617-4625. doi: 10.1021/acssensors.4c00799. Epub 2024 Aug 28.
Conductive hydrogel is considered to be one of the most potential sensing materials for wearable strain sensors. However, both the hydrophilicity of polymer chains and high water content severely inhibit the potential applications of hydrogel-based sensors in extreme conditions. In this study, a multicross-linked hydrogel was prepared by simultaneously introducing a double-network matrix, multiple conductive fillers, and free-moving ions, which can withstand an ultralow temperature below -80 °C. A superhydrophobic Ecoflex layer with a water contact angle of 159.1° was coated on the hydrogel using simple spraying and laser engraving methods. Additionally, the smart glove integrating five hydrogel strain sensors with a microprocessor was developed to recognize 12 types of diving gestures and synchronously transmit recognition results to smartphones. The superhydrophobic and antifreezing hydrogel strain sensor proposed in this study emerges promising potentials in wearable electronics, human-machine interfaces, and underwater applications.
导电水凝胶被认为是可穿戴应变传感器最具潜力的传感材料之一。然而,聚合物链的亲水性和高含水量严重限制了水凝胶基传感器在极端条件下的潜在应用。在本研究中,通过同时引入双网络基质、多种导电填料和自由移动离子制备了一种多交联水凝胶,其能够承受低于-80°C的超低温。使用简单的喷涂和激光雕刻方法在水凝胶上涂覆了水接触角为159.1°的超疏水Ecoflex层。此外,还开发了集成五个水凝胶应变传感器和一个微处理器的智能手套,以识别12种潜水手势并将识别结果同步传输到智能手机。本研究提出的超疏水且抗冻的水凝胶应变传感器在可穿戴电子设备、人机界面和水下应用中展现出了广阔的潜力。