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具有创纪录高机械强度、前所未有的抗裂性和超高弹性恢复能力的可自愈且可回收的弹性体。

Healable and Recyclable Elastomers with Record-High Mechanical Robustness, Unprecedented Crack Tolerance, and Superhigh Elastic Restorability.

作者信息

Li Zequan, Zhu You-Liang, Niu Wenwen, Yang Xiao, Jiang Zhiyong, Lu Zhong-Yuan, Liu Xiaokong, Sun Junqi

机构信息

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

State Key Laboratory of Polymer Physics and Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, China.

出版信息

Adv Mater. 2021 Jul;33(27):e2101498. doi: 10.1002/adma.202101498. Epub 2021 Jun 1.

Abstract

Spider silk is one of the most robust natural materials, which has extremely high strength in combination with great toughness and good elasticity. Inspired by spider silk but beyond it, a healable and recyclable supramolecular elastomer, possessing superhigh true stress at break (1.21 GPa) and ultrahigh toughness (390.2 MJ m ), which are, respectively, comparable to and ≈2.4 times higher than those of typical spider silk, is developed. The elastomer has the highest tensile strength (ultimate engineering stress, 75.6 MPa) ever recorded for polymeric elastomers, rendering it the strongest and toughest healable elastomer thus far. The hyper-robust elastomer exhibits superb crack tolerance with unprecedentedly high fracture energy (215.2 kJ m ) that even exceeds that of metals and alloys, and superhigh elastic restorability allowing dimensional recovery from elongation over 12 times. These extraordinary mechanical performances mainly originate from the meticulously engineered hydrogen-bonding segments, consisting of multiple acylsemicarbazide and urethane moieties linked with flexible alicyclic hexatomic spacers. Such hydrogen-bonding segments, incorporated between extensible polymer chains, aggregate to form geometrically confined hydrogen-bond arrays resembling those in spider silk. The hydrogen-bond arrays act as firm but reversible crosslinks and sacrificial bonds for enormous energy dissipation, conferring exceptional mechanical robustness, healability, and recyclability on the elastomer.

摘要

蜘蛛丝是最坚韧的天然材料之一,具有极高的强度,同时兼具出色的韧性和良好的弹性。受蜘蛛丝启发但又超越蜘蛛丝,一种可愈合且可回收的超分子弹性体被研发出来,其断裂时的超高真实应力(1.21吉帕)和超高韧性(390.2兆焦/平方米),分别与典型蜘蛛丝相当且比其高约2.4倍。该弹性体具有聚合物弹性体有史以来记录的最高拉伸强度(极限工程应力,75.6兆帕),使其成为迄今为止最强韧且可愈合的弹性体。这种超强韧性的弹性体表现出卓越的抗裂性,具有前所未有的高断裂能(215.2千焦/平方米),甚至超过金属和合金,并且具有超高的弹性恢复能力,能从超过12倍的伸长中实现尺寸恢复。这些非凡的机械性能主要源自精心设计的氢键片段,其由多个酰基氨基脲和脲基部分与柔性脂环族六元间隔基相连组成。这种氢键片段掺入可伸展的聚合物链之间,聚集形成类似于蜘蛛丝中的几何受限氢键阵列。氢键阵列充当牢固但可逆的交联和牺牲键,用于大量能量耗散,赋予弹性体卓越的机械强度、可愈合性和可回收性。

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