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用于柔性超级电容器的具有导电纳米通道的双连续离子凝胶电解质

Bicontinuous Ionogel Electrolyte with Conductive Nanochannels for Flexible Supercapacitors.

作者信息

Li Teng, Feng Lanlan, Chen Qiang, Yu Wei, Liu Sijun

机构信息

Advanced Rheology Institute, Department of Polymer Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, P. R. China.

School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo 454000, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 27;16(12):15336-15347. doi: 10.1021/acsami.4c00374. Epub 2024 Mar 14.

DOI:10.1021/acsami.4c00374
PMID:38485463
Abstract

Ionogels with excellent mechanical performance and conductivity have been considered as ideal candidates for flexible ionotronics. However, current ionogels suffer from the well-known trade-off between mechanical strength and conductivity. Herein, we construct an ionogel with bicontinuous phase structures, a polymer-rich phase, and a solvent-rich phase. The synergy of the polymer-rich phase as an energy dissipation mechanism and the solvent-rich phase as a conductive nanochannel enables the resultant bicontinuous ionogel to show comprehensive properties, a tensile strength of 4.2 MPa, a toughness of 14.4 MJ/m, a conductivity of 4.3 mS/cm, excellent self-healing capability, and reprocessability. Benefiting from the remarkable mechanical performance and high conductivity, the integrated supercapacitor achieves a high specific capacitance of 118 mF/cm (at a current density of 0.2 mA/cm) and a capacitance retention of up to 90% (1000 charge-discharge cycles). More significantly, the resultant supercapacitor retains outstanding electrochemical performance even after being subjected to various deformations and even under harsh conditions. This study provides a reliable strategy for developing a high-performance ionogel electrolyte and broadens its application in flexible ionotronics.

摘要

具有优异机械性能和导电性的离子凝胶被认为是柔性离子电子学的理想候选材料。然而,目前的离子凝胶存在机械强度和导电性之间众所周知的权衡问题。在此,我们构建了一种具有双连续相结构、富含聚合物相和富含溶剂相的离子凝胶。富含聚合物相作为能量耗散机制与富含溶剂相作为导电纳米通道的协同作用,使得所得的双连续离子凝胶具有综合性能,拉伸强度为4.2兆帕,韧性为14.4兆焦/立方米,电导率为4.3毫西门子/厘米,具有优异的自愈能力和可再加工性。受益于卓越的机械性能和高导电性,集成超级电容器实现了118毫法/平方厘米的高比电容(在电流密度为0.2毫安/平方厘米时)以及高达90%的电容保持率(1000次充放电循环)。更重要的是,所得超级电容器即使在经历各种变形后以及在恶劣条件下仍保持出色的电化学性能。这项研究为开发高性能离子凝胶电解质提供了可靠策略,并拓宽了其在柔性离子电子学中的应用。

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