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用于增强离子传导和能量存储的含离子超支化聚合物的柔性持久离子凝胶

Flexible Sustained Ionogels with Ionic Hyperbranched Polymers for Enhanced Ion-Conduction and Energy Storage.

作者信息

Flouda Paraskevi, Bukharina Daria, Pierce Kellina J, Stryutsky Alexandr V, Shevchenko Valery V, Tsukruk Vladimir V

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, United States.

Institute of Macromolecular Chemistry of the National Academy of Sciences of Ukraine, Kharkivske Shosse 48, Kyiv 02160, Ukraine.

出版信息

ACS Appl Mater Interfaces. 2022 Jun 3. doi: 10.1021/acsami.2c04502.

Abstract

Flexible and mechanically robust gel-like electrolytes offer enhanced energy storage capabilities, versatility, and safety in batteries and supercapacitors. However, the trade-off between ion conduction and mechanical robustness remains a challenge for these materials. Here, we suggest that the introduction of ionic hyperbranched polymers in structured sustained ionogels will lead to both enhanced ion conduction and mechanical performance because of the hyperbranched polymers' ionically conductive groups and the complementary interfacial interactions with ionic liquids. More specifically, we investigate the effect of hyperbranched polymers with carboxylate terminal groups and imidazolium counterions with various ionic group densities on the properties of ionogels composed of coassembled cellulose nanofibers (CNFs) and cellulose nanocrystals (CNCs) as sustainable open pore frame for ionic liquid immersion. The addition of hyperbranched polymers leads to the formation of highly interconnected openly porous, lightweight, and shape-persistent materials by harnessing hydrogen bonding between the polymers and the CNFs/CNCs "frame". Notably, these materials possess a 2-fold improvement in ionic conductivity combined with many-fold increase in Young's modulus, tensile strength, and toughness, making them comparable to common reinforced nanocomposite materials. Furthermore, the corresponding thin-film gel supercapacitors possess enhanced electrochemical cycling stability upon repeated bending with an 85% capacitance retention after 10 000 cycles, promising new insight in the development of simultaneously conductive and flexible gel electrolytes with sustained performance.

摘要

柔性且机械坚固的凝胶状电解质在电池和超级电容器中提供了增强的能量存储能力、多功能性和安全性。然而,对于这些材料而言,离子传导与机械坚固性之间的权衡仍然是一个挑战。在此,我们表明,在结构化的持续离子凝胶中引入离子型超支化聚合物将导致离子传导和机械性能的增强,这是由于超支化聚合物的离子导电基团以及与离子液体的互补界面相互作用。更具体地说,我们研究了具有羧酸盐端基的超支化聚合物和具有不同离子基团密度的咪唑鎓抗衡离子对由共组装的纤维素纳米纤维(CNF)和纤维素纳米晶体(CNC)组成的离子凝胶性能的影响,其中CNF和CNC作为用于浸入离子液体的可持续开孔框架。超支化聚合物的加入通过利用聚合物与CNF/CNC“框架”之间的氢键作用,导致形成高度互连的开放多孔、轻质且形状持久的材料。值得注意的是,这些材料的离子电导率提高了2倍,同时杨氏模量、拉伸强度和韧性提高了许多倍,使其与普通增强纳米复合材料相当。此外,相应的薄膜凝胶超级电容器在反复弯曲时具有增强的电化学循环稳定性,在10000次循环后电容保持率为85%,这为开发具有持续性能的同时导电且柔性的凝胶电解质提供了新的见解。

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