Wang Hui, Zhang Qin, Chen Shuang, Liu Xuming, Liu Jinhua, He Wenwen, Liu Xin
Polymeric and Soft Materials Laboratory, School of Chemistry and Life Science and Advanced Institute of Materials Science, Changchun University of Technology, Changchun 130012, China.
Polymeric and Soft Materials Laboratory, School of Chemical Engineering and Advanced Institute of Materials Science, Changchun University of Technology, Changchun 130012, China.
ACS Appl Mater Interfaces. 2024 Oct 16;16(41):56170-56180. doi: 10.1021/acsami.4c12666. Epub 2024 Oct 2.
Conductive gels have greatly facilitated the development of flexible energy storage devices, including supercapacitors, batteries, and triboelectric nanogenerators. However, it is challenging for gel electrolytes to tackle the trade-off issues between mechanical properties and conductivity. Herein, a strategy of all inorganic salt-driven supramolecular networks is presented to construct gel electrolytes with high conductivity and reliable mechanical performance for flexible supercapacitors. The salt gel is successfully fabricated by combining a salt supramolecular network constructed by NHMoO·4HO and FeCl·6HO and a polymer network of poly(vinyl alcohol). The inorganic salt supramolecular network serves as a rigid self-supporting framework in the hydrogel system for improving the mechanical properties and providing abundant active sites for accelerating ion transport. Furthermore, the salt gel-enabled supercapacitors are equipped and exhibit a high specific capacitance (199.4 mF cm) and excellent energy density (27.69 μWh cm). Moreover, the flexible supercapacitors not only present remarkable cyclic stability after 3000 charging/discharging cycles but also exhibit good electrochemical stability even under severe deformation conditions. The strategy of salt-gel-driven flexible supercapacitors would provide fresh thinking for the development of advanced flexible energy storage fields.
导电凝胶极大地促进了包括超级电容器、电池和摩擦纳米发电机在内的柔性储能装置的发展。然而,凝胶电解质要解决机械性能和导电性之间的权衡问题具有挑战性。在此,提出了一种全无机盐驱动的超分子网络策略,以构建用于柔性超级电容器的具有高导电性和可靠机械性能的凝胶电解质。通过将由NHMoO·4HO和FeCl·6HO构建的盐超分子网络与聚乙烯醇的聚合物网络相结合,成功制备了盐凝胶。无机盐超分子网络在水凝胶体系中作为刚性自支撑框架,用于改善机械性能并为加速离子传输提供丰富的活性位点。此外,配备了盐凝胶的超级电容器表现出高比电容(199.4 mF cm)和优异的能量密度(27.69 μWh cm)。而且,柔性超级电容器不仅在3000次充放电循环后具有显著的循环稳定性,甚至在严重变形条件下也表现出良好的电化学稳定性。盐凝胶驱动的柔性超级电容器策略将为先进柔性储能领域的发展提供新的思路。