He Zhirui, Yuan Weizhong
School of Materials Science and Engineering, Key Laboratory of Advanced Civil Materials of Ministry of Education, Tongji University, Shanghai 201804, People's Republic of China.
Department of Interventional and Vascular Surgery, Shanghai Tenth People's Hospital, School of Medicine, Tongji University, Shanghai 200072, People's Republic of China.
ACS Appl Mater Interfaces. 2021 Nov 10;13(44):53055-53066. doi: 10.1021/acsami.1c14139. Epub 2021 Oct 26.
The demand for wearable sensors consisting of multifunctional conductive hydrogels with fatigue resistance and adhesion properties is rising. More importantly, it is necessary to improve the freezing tolerance and dehydration resistance of hydrogels to avoid performance degradation in harsh environments. Herein, a robust nanocomposite ionogel was fabricated in [EMIM][Cl] ionic liquid and clay nanosheets were used as physical cross-linkers through rapid UV polymerization. The excellent mechanical properties, repeated self-adhesion to various substrates, freezing tolerance, and anti-drying properties were integrated into the nanocomposite ionic liquid hydrogel. The addition of clay nanosheets Laponite XLG endowed the ionogel with a high stretchability of up to 1200% and a tensile strength of up to 0.14 MPa, and the ionogel could be recovered when the external force was released. Ascribing to ionic liquids, the nanocomposite ionogel displayed ionic conductivity and temperature tolerance. An ionogel battery with a 0.72 V output voltage was formed by assembling the ionogel with a layer of zinc and copper sheet on each side to realize the conversion from chemical energy to electrical energy. The maximum voltage could reach 2.8 V when the four units are combined, which could provide energy for an LED bulb and could be used as a self-powered strain sensor under harsh conditions. In this work, a multifunctional ionogel self-powered sensor is proposed, which has potential applications in the fields of electronic skin, human-machine interaction, and biosensors over a wide temperature range.
对具有抗疲劳和粘附性能的多功能导电水凝胶制成的可穿戴传感器的需求正在上升。更重要的是,有必要提高水凝胶的耐冻性和抗脱水性能,以避免在恶劣环境中性能下降。在此,通过快速紫外光聚合在[EMIM][Cl]离子液体中制备了一种坚固的纳米复合离子凝胶,并使用粘土纳米片作为物理交联剂。纳米复合离子液体水凝胶兼具优异的机械性能、对各种基材的反复自粘性、耐冻性和抗干燥性能。添加粘土纳米片Laponite XLG使离子凝胶具有高达1200%的高拉伸性和高达0.14 MPa的拉伸强度,并且在释放外力时离子凝胶能够恢复原状。由于离子液体的存在,纳米复合离子凝胶具有离子导电性和耐温性。通过在离子凝胶两侧各组装一层锌片和铜片形成了输出电压为0.72 V的离子凝胶电池,实现了从化学能到电能的转换。当四个单元组合时,最大电压可达2.8 V,可为LED灯泡供电,并可在恶劣条件下用作自供电应变传感器。在这项工作中,提出了一种多功能离子凝胶自供电传感器,其在宽温度范围内的电子皮肤、人机交互和生物传感器领域具有潜在应用。