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金属-卤素相互作用诱导相分离以制备具有可调热电性能的自修复坚韧离子凝胶

Metal-Halogen Interactions Inducing Phase Separation for Self-Healing and Tough Ionogels with Tunable Thermoelectric Performance.

作者信息

Zhao Wei, Zheng Yiwei, Huang Aibin, Jiang Meng, Wang Lianjun, Zhang Qihao, Jiang Wan

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.

Soochow Institute for Energy and Materials Innovations, College of Energy, Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Soochow University, Suzhou, 215006, China.

出版信息

Adv Mater. 2024 Jul;36(30):e2402386. doi: 10.1002/adma.202402386. Epub 2024 May 13.

Abstract

Ionic liquid-based thermoelectric gels become a compelling candidate for thermoelectric power generation and sensing due to their giant thermopower, good thermal stability, high flexibility, and low-cost production. However, the materials reported to date suffer from canonical trade-offs between self-healing ability, stretchability, strength, and ionic conductivity. Herein, a self-healing and tough ionogel (PEO/LiTFSI/EmimCl) with tunable thermoelectric properties by tailoring metal-halogen bonding interactions, is developed. Different affinities between polymer matrix and salts are exploited to induce phase separation, resulting in simultaneous enhancement of ionic conductivity and mechanical strength. Molecular dynamics (MD) simulations and spectroscopic analyses show that Cl ions impair the lithium-ether oxygen coordination, leading to changes in chain conformation. The migration difference between cations and anions is thus widened and a transition from n-type to p-type thermoelectric ionogels is realized. Furthermore, the dynamic interactions of metal-ligand coordination and hydrogen bonding yield autonomously self-healing capability, large stretchability (2000%), and environment-friendly recyclability. Benefiting from these fascinating properties, the multifunctional PEO-based ionogels are applied in sensors, supercapacitors, and thermoelectric power generation modules. The strategy of tuning solvation dominance to address the trade-offs in thermoelectric ionogels and optimize their macroscopic properties offers new possibilities for the design of advanced ionogels.

摘要

基于离子液体的热电凝胶因其巨大的热电势、良好的热稳定性、高柔韧性和低成本生产,成为热电发电和传感领域极具吸引力的候选材料。然而,迄今为止报道的材料在自愈能力、拉伸性、强度和离子电导率之间存在典型的权衡。在此,通过调整金属-卤素键相互作用,开发了一种具有可调热电性能的自愈且坚韧的离子凝胶(PEO/LiTFSI/EmimCl)。利用聚合物基体与盐之间不同的亲和力诱导相分离,从而同时提高离子电导率和机械强度。分子动力学(MD)模拟和光谱分析表明,Cl离子会破坏锂-醚氧配位,导致链构象发生变化。阳离子和阴离子之间的迁移差异因此扩大,实现了从n型到p型热电离子凝胶的转变。此外,金属-配体配位和氢键的动态相互作用产生了自主自愈能力、大拉伸性(2000%)和环境友好的可回收性。受益于这些迷人的特性,多功能PEO基离子凝胶被应用于传感器、超级电容器和热电发电模块。通过调整溶剂化优势来解决热电离子凝胶中的权衡并优化其宏观性能的策略,为先进离子凝胶的设计提供了新的可能性。

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