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由大分子相互连接的 3D 石墨烯/纳米结构导电聚合物水凝胶实现的可拉伸全固态纤维状超级电容器。

Stretchable All-Gel-State Fiber-Shaped Supercapacitors Enabled by Macromolecularly Interconnected 3D Graphene/Nanostructured Conductive Polymer Hydrogels.

机构信息

Materials Science and Engineering Program and Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX, 78712, USA.

Department of Architecture and Environment, Sichuan University, Chengdu, 610065, P. R. China.

出版信息

Adv Mater. 2018 May;30(18):e1800124. doi: 10.1002/adma.201800124. Epub 2018 Mar 27.

Abstract

Nanostructured conductive polymer hydrogels (CPHs) have been extensively applied in energy storage owing to their advantageous features, such as excellent electrochemical activity and relatively high electrical conductivity, yet the fabrication of self-standing and flexible electrode-based CPHs is still hampered by their limited mechanical properties. Herein, macromolecularly interconnected 3D graphene/nanostructured CPH is synthesized via self-assembly of CPHs and graphene oxide macrostructures. The 3D hybrid hydrogel shows uniform interconnectivity and enhanced mechanical properties due to the strong macromolecular interaction between the CPHs and graphene, thus greatly reducing aggregation in the fiber-shaping process. A proof-of-concept all-gel-state fibrous supercapacitor based on the 3D polyaniline/graphene hydrogel is fabricated to demonstrate the outstanding flexibility and mouldability, as well as superior electrochemical properties enabled by this 3D hybrid hydrogel design. The proposed device can achieve a large strain (up to ≈40%), and deliver a remarkable volumetric energy density of 8.80 mWh cm (at power density of 30.77 mW cm ), outperforming many fiber-shaped supercapacitors reported previously. The all-hydrogel design opens up opportunities in the fabrication of next-generation wearable and portable electronics.

摘要

纳米结构导电聚合物水凝胶(CPHs)由于其优异的电化学活性和相对较高的电导率,在储能领域得到了广泛应用,但自支撑和柔性基于电极的 CPH 的制造仍然受到其有限的机械性能的阻碍。在此,通过 CPHs 和氧化石墨烯宏观结构的自组装,合成了具有大分子相互连接的 3D 石墨烯/纳米结构 CPH。由于 CPHs 和石墨烯之间的强大分子相互作用,3D 杂化水凝胶表现出均匀的互连性和增强的机械性能,从而大大减少了纤维成型过程中的聚集。基于 3D 聚苯胺/石墨烯水凝胶构建了一个概念验证的全凝胶态纤维状超级电容器,以展示这种 3D 杂化水凝胶设计所带来的出色的柔韧性和可模塑性,以及优异的电化学性能。所提出的器件可以实现大应变(高达约 40%),并提供显著的体积能量密度 8.80 mWh cm(在 30.77 mW cm 的功率密度下),超过了许多以前报道的纤维状超级电容器。全水凝胶设计为制造下一代可穿戴和便携式电子产品开辟了机会。

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