State Key Laboratory of Optoelectronic Materials and Technologies and the Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information Technology , Sun Yat-sen University , Guangzhou 510275 , China.
The Ministry of Education Key Laboratory of Micro and Nano Systems for Aerospace , Northwestern Polytechnical University , Xi'an , 710072 , China.
ACS Appl Mater Interfaces. 2019 Mar 6;11(9):9405-9414. doi: 10.1021/acsami.8b20267. Epub 2019 Feb 21.
Ionic hydrogels, a class of intrinsically stretchable and conductive materials, are widely used in soft electronics. However, the easy freezing and drying of water-based hydrogels significantly limit their long-term stability. Here, a facile solvent-replacement strategy is developed to fabricate ethylene glycol (Eg)/glycerol (Gl)-water binary antifreezing and antidrying organohydrogels for ultrastretchable and sensitive strain sensing within a wide temperature range. Because of the ready formation of strong hydrogen bonds between Eg/Gl and water molecules, the organohydrogels gain exceptional freezing and drying tolerance with retained deformability, conductivity, and self-healing ability even stay at extreme temperature for a long time. Thus, the fabricated strain sensor displays a gauge factor of 6, which is much higher than previously reported values for hydrogel-based strain sensors. Furthermore, the strain sensor exhibits a relatively wide strain range (0.5-950%) even at -18 °C. Various human motions with different strain levels are monitored by the strain sensor with good stability and repeatability from -18 to 25 °C. The organohydrogels maintained the strain sensing capability when exposed to ambient air for nine months. This work provides new insight into the fabrication of stable, ultrastretchable, and ultrasensitive strain sensors using chemically modified organohydrogel for emerging wearable electronics.
离子水凝胶是一类具有本征拉伸性和导电性的材料,广泛应用于软电子领域。然而,水凝胶的易冻和干燥极大地限制了其长期稳定性。在这里,我们开发了一种简便的溶剂置换策略,制备了乙二醇(Eg)/甘油(Gl)-水二元抗冻和抗干燥的有机水凝胶,用于在很宽的温度范围内实现超拉伸和灵敏的应变传感。由于 Eg/Gl 与水分子之间容易形成强氢键,因此即使在长时间处于极端温度下,有机水凝胶仍具有出色的冻融和干燥耐受性,同时保持可变形性、导电性和自修复能力。因此,所制备的应变传感器具有 6 的应变系数,远高于先前报道的基于水凝胶的应变传感器的值。此外,该应变传感器在-18°C 时仍具有相对较宽的应变范围(0.5-950%)。各种具有不同应变水平的人体运动都可以通过应变传感器进行监测,该传感器在-18 至 25°C 之间具有良好的稳定性和重复性。该有机水凝胶在暴露于空气 9 个月后仍保持应变传感能力。这项工作为使用化学改性的有机水凝胶为新兴的可穿戴电子设备制造稳定、超拉伸和超灵敏的应变传感器提供了新的思路。