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首页> 外文期刊>Advanced Functional Materials >Cellulose Nanofibrils Enhanced, Strong, Stretchable, Freezing-Tolerant Ionic Conductive Organohydrogel for Multi-Functional Sensors
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Cellulose Nanofibrils Enhanced, Strong, Stretchable, Freezing-Tolerant Ionic Conductive Organohydrogel for Multi-Functional Sensors

机译:用于多功能传感器的纤维素纳米纤维增强,强,可伸展,冷冻耐热离子导电有机氢氢化筋

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摘要

To date, ionic conducting hydrogel attracts tremendous attention as an alternative to the conventional rigid metallic conductors in fabricating flexible devices, owing to their intrinsic characteristics. However, simultaneous realization of high stiffness, toughness, ionic conductivity, and freezing tolerance through a simple approach is still a challenge. Here, a novel highly stretchable (up to 660%), strong (up to 2.1 MPa), tough (5.25 MJ m(-3)), and transparent (up to 90%) ionic conductive (3.2 S m(-1)) organohydrogel is facilely fabricated, through sol-gel transition of polyvinyl alcohol and cellulose nanofibrils (CNFs) in dimethyl sulfoxide-water solvent system. The ionic conductive organohydrogel presents superior freezing tolerance, remaining flexible and conductive (1.1 S m(-1)) even at -70 degrees C, as compared to the other reported anti-freezing ionic conductive (organo)hydrogel. Notably, this material design demonstrates synergistic effect of CNFs in boosting both mechanical properties and ionic conductivity, tackling a long-standing dilemma among strength, toughness, and ionic conductivity for the ionic conducting hydrogel. In addition, the organohydrogel displays high sensitivity toward both tensile and compressive deformation and based on which multi-functional sensors are assembled to detect human body movement with high sensitivity, stability, and durability. This novel organohydrogel is envisioned to function as a versatile platform for multi-functional sensors in the future.
机译:迄今为止,由于其内在特征,离子导电水凝胶作为传统刚性金属导体的替代品。然而,通过简单的方法同时实现高刚度,韧性,离子导电性和冷冻耐受性仍然是一个挑战。在此,一种高度拉伸(高达660%),强(高达2.1MPa),坚韧(5.25MJ m(-3)),透明(高达90%)离子导电(3.2 s m(-1) )通过聚乙烯醇和二甲基氧化物 - 水溶剂系统中的聚乙烯醇和纤维素纳米纤维(CNFS)的溶胶 - 凝胶转变,有机氢凝胶。与其他报道的抗冷冻离子导电(有机)水凝胶相比,离子导电有机氢凝胶凝胶呈现出优异的冷冻耐受性,剩余的柔性和导电(1.1Sm(-1)),仍然在-70℃。值得注意的是,这种材料设计表明CNF在促进机械性能和离子导电性方面的协同作用,在电离离子导电水凝胶的强度,韧性和离子电导率之间解决长期困境。此外,有机氢凝胶对拉伸和压缩变形显示出高灵敏度,并且基于哪些多功能传感器组装以检测具有高灵敏度,稳定性和耐用性的人体运动。该新颖的有机氢凝凝胶被设想,以便在未来用作多功能传感器的多功能平台。

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