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受海参启发的聚氨酯在室温自愈合离子凝胶中展现出破纪录的机械性能。

Sea Cucumber-Inspired Polyurethane Demonstrating Record-Breaking Mechanical Properties in Room-Temperature Self-Healing Ionogels.

作者信息

Xu Fuchang, Li Hongli, Li Yang

机构信息

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun, 130012, P. R. China.

出版信息

Adv Mater. 2024 Nov;36(44):e2412317. doi: 10.1002/adma.202412317. Epub 2024 Sep 12.

Abstract

Practical applications of existing self-healing ionogels are often hindered by the trade-off between their mechanical robustness, ionic conductivity, and temperature requirements for their self-healing ability. Herein, this challenge is addressed by drawing inspiration from sea cucumber. A polyurethane containing multiple hydrogen-bond donors and acceptors is synthesized and used to fabricate room-temperature self-healing ionogels with excellent mechanical properties, high ionic conductivity, puncture resistance, and impact resistance. The hard segments of polyurethane, driven by multiple hydrogen bonds, coalesce into hard phase regions, which can efficiently dissipate energy through the reversible disruption and reformation of multiple hydrogen bonds. Consequently, the resulting ionogels exhibit record-high tensile strength and toughness compared to other room-temperature self-healing ionogels. Furthermore, the inherent reversibility of multiple hydrogen bonds within the hard phase regions allows the ionogels to spontaneously and efficiently self-heal damaged mechanical properties and ionic conductivity multiple times at room temperature. To underscore their application potential, these ionogels are employed as electrolytes in the fabrication of electrochromic devices, which exhibit excellent and stable electrochromic performance, repeatable healing ability, and satisfactory impact resistance. This study presents a novel strategy for the fabrication of ionogels with exceptional mechanical properties and room-temperature self-healing capability.

摘要

现有自修复离子凝胶的实际应用常常受到其机械强度、离子电导率以及自修复能力所需温度之间权衡的阻碍。在此,通过从海参身上获取灵感来应对这一挑战。合成了一种含有多个氢键供体和受体的聚氨酯,并用于制备具有优异机械性能、高离子电导率、抗穿刺性和抗冲击性的室温自修复离子凝胶。聚氨酯的硬段在多个氢键的驱动下聚集成硬相区域,该区域能够通过多个氢键的可逆断裂和重新形成有效地耗散能量。因此,与其他室温自修复离子凝胶相比,所得离子凝胶具有创纪录的高拉伸强度和韧性。此外,硬相区域内多个氢键的固有可逆性使离子凝胶能够在室温下多次自发且有效地自我修复受损的机械性能和离子电导率。为强调其应用潜力,这些离子凝胶被用作电解质来制造电致变色器件,该器件表现出优异且稳定的电致变色性能、可重复的修复能力以及令人满意的抗冲击性。这项研究提出了一种制备具有卓越机械性能和室温自修复能力的离子凝胶的新策略。

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