Lingling Meng, Da Liu, En Liu, Shijie Ding and Weihao Li
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引用次数: 0
摘要
目前,导电水凝胶在可穿戴柔性器件领域的应用已经广为人知。然而,大多数水凝胶在力学、稳定性和自恢复方面存在一定的缺陷,这极大地限制了它们在柔性传感器中的应用。本文以丙烯酰胺(AM)、海藻酸钠(SA)、纤维素纳米晶(CNC)、多壁碳纳米管(MWCNTs)为原料,将其分散溶解于水/甘油二元溶剂中,再采用离子盐法制备稳定性优异、拉伸性能良好的碳纳米复合双网导电水凝胶。为了获得性能最优的导电水凝胶,本文对SA、CNC和离子的影响进行了分析和研究。结果表明,当CNC含量为0.75 wt% (671.57%, 0.19 MPa)时,复合材料的力学性能最佳。此外,Ca2+离子的引入使水凝胶具有优异的导电性和传感性能。在离子浓度为0.2 mol L−1时,Ca2+交联水凝胶的电导率最高(可达3.02 S m−1),同时具有良好的应变敏感性(GF可达6.02)。从而为柔性电子器件的应用和探索提供了可靠的基础。
Polyacrylamide/sodium alginate-based carbon nanocomposite conductive hydrogels for wearable flexible devices
Nowadays, the application of conductive hydrogels in the field of wearable flexible devices is widely known. However, most hydrogels have some defects in mechanics, stability, and self-recovery, which greatly limit their applications in flexible sensors. In this paper, acrylamide (AM), sodium alginate (SA), cellulose nanocrystals (CNC), and multi-walled carbon nanotubes (MWCNTs) are used as raw materials, which are dispersed and dissolved in water/glycerol binary solvents, and then ionic salting is used to obtain carbon nanocomposite dual-network conductive hydrogels with excellent stability and good tensile properties. The effects of SA, CNC, and ions are analyzed and investigated here in order to obtain conductive hydrogels with optimal properties. The results showed that the mechanical properties could be optimized when the content of CNC was 0.75 wt% (671.57%, 0.19 MPa). In addition, the introduction of Ca2+ ions endowed the hydrogel with superior electrical conductivity and sensing properties. At an ionic concentration of 0.2 mol L−1, the Ca2+ crosslinked hydrogels showed the highest electrical conductivity (up to 3.02 S m−1), and at the same time, the hydrogels could have good strain sensitivity (GF up to 6.02). Thus, this work provides a reliable basis for the application and exploration of flexible electronic devices.