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Electrically conductive hydrogels for flexible energy storage systems

机译:用于柔性储能系统的导电水凝胶

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To power wearable electronic devices, various flexible energy storage systems have been designed to work in consecutive bending, stretching and even twisting conditions. Supercapacitors and batteries have been considered to be the most promising energy/power sources for wearable electronics; however, they need to be electrochemically sustainable and mechanically robust. Electrically conductive hydrogels (ECHs), combining the electrical properties of conductive materials with the unique features of hydrogels, are ideal frameworks to design and construct flexible supercapacitors and batteries. ECHs are intrinsically flexible to sustain large mechanical deformation; they can hold a large amount of electrolyte solution in a 3D nanostructured conducting network, providing an extremely high surface area for the required electrochemical reactions. To date, nanostructured three-dimensional ECHs have exhibited high performance when applied as active electrode materials for supercapacitors and lithium-ion batteries. Future research may attempt to develop functional ECHs with controllable size, composition, morphology, and interface. This review summarizes the material design and synthetic approach of ECHs, demonstrating the advances of percolation theory in ECH materials, and subsequently presents their effective application in flexible energy storage systems and discusses the challenges and opportunities in this field. (C) 2018 Elsevier B.V. All rights reserved.
机译:为了动力可穿戴电子设备,各种柔性储能系统设计用于连续弯曲,拉伸甚至扭转条件。超级电容器和电池被认为是可穿戴电子产品的最有希望的能源/电源;然而,他们需要进行电化学可持续和机械稳健。导电水凝胶(ECH),将导电材料的电性能与水凝胶的独特特征相结合,是设计和构建柔性超级电容器和电池的理想框架。 ECHS本质上是灵活的,以维持大机械变形;它们可以在3D纳米结构导电网络中保持大量电解质溶液,为所需的电化学反应提供极高的表面积。迄今为止,纳米结构的三维ECHs在用作超级电容器和锂离子电池的有源电极材料时表现出高性能。未来的研究可能会尝试具有可控大小,组成,形态和界面的功能echs。本综述总结了ECH的材料设计和合成方法,展示了ECH材料中渗滤理论的进展,随后在灵活的能量存储系统中展示了它们的有效应用,并探讨了该领域的挑战和机遇。 (c)2018 Elsevier B.v.保留所有权利。

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