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外部无应力可逆多重形状记忆聚合物

External Stress-Free Reversible Multiple Shape Memory Polymers.

作者信息

Huang Ya Nan, Fan Long Fei, Rong Min Zhi, Zhang Ming Qiu, Gao Yu Ming

机构信息

Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, GD HPPC Lab, School of Chemistry , Sun Yat-Sen University , Guangzhou 510275 , China.

School of Textile Materials and Engineering , Wuyi University , Jiangmen , Guangdong 529020 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 28;11(34):31346-31355. doi: 10.1021/acsami.9b10052. Epub 2019 Aug 19.

Abstract

The present work is focused on developing external stress-free two-way triple shape memory polymers (SMPs). Accordingly, a series of innovative approaches are proposed for the material design and preparation. Polyurethane prepolymers carrying crystalline polytetrahydrofuran (PTMEG) and poly(ε-caprolactone) (PCL) as the switching phases are respectively synthesized in advance and then cross-linked to produce the target material. The stepwise method is believed to be conducive to manipulation of the relative contribution of PCL and PTMEG. Moreover, the chain extender, 2-amino-5-(2-hydroxyethyl)-6-methylpyrimidin-4-ol (UPy), is incorporated to establish hydrogen bonds among the macromolecules. By straightforward stretching treatment at different temperatures, the hydrogen bond networks are successfully converted into an internal stress provider, which overcomes the challenge of stress relaxation of the melted low melting temperature polymer (i.e., PTMEG) and increases the efficiency of stress transfer. Meanwhile, the contraction force of the switching phases is tuned to match the internal tensile stress. As a result, the internal stress provider can closely collaborate with melting/recrystallization of the crystalline domains, leading to the repeated multiple shape memory effects. The cross-linked polyurethane is thus able to reversibly morph among three shapes and displays its potentials as soft robot and actuator. The strategy reported here has the advantages of easily accessible raw materials, simple reaction, and facile programing/deprograming/reprograming, so that it possesses wide applicability.

摘要

目前的工作重点是开发无外部应力的双向三重形状记忆聚合物(SMP)。因此,针对材料的设计和制备提出了一系列创新方法。预先分别合成了以结晶聚四氢呋喃(PTMEG)和聚(ε-己内酯)(PCL)作为转变相的聚氨酯预聚物,然后进行交联以制备目标材料。逐步法被认为有利于控制PCL和PTMEG的相对贡献。此外,引入扩链剂2-氨基-5-(2-羟乙基)-6-甲基嘧啶-4-醇(UPy)以在大分子之间建立氢键。通过在不同温度下直接拉伸处理,氢键网络成功转变为内部应力源,克服了低熔点聚合物(即PTMEG)熔融时应力松弛的挑战,并提高了应力传递效率。同时,调整转变相的收缩力以匹配内部拉伸应力。结果,内部应力源可以与晶区的熔融/再结晶紧密协作,从而产生重复的多重形状记忆效应。因此,交联聚氨酯能够在三种形状之间可逆地变形,并展现出作为软机器人和致动器的潜力。这里报道的策略具有原料易于获取、反应简单以及编程/去编程/重新编程简便的优点,因此具有广泛的适用性。

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