Yang Jinghui, Xia Yan
Department of Chemistry, Stanford University Stanford California 94305 USA
Chem Sci. 2021 Feb 12;12(12):4389-4394. doi: 10.1039/d1sc00001b.
In an effort to develop polymers that can undergo extensive backbone degradation in response to mechanical stress, we report a polymer system that is hydrolytically stable but unmasks easily hydrolysable enol ether backbone linkages when force is applied. These polymers were synthesized by ring-opening metathesis polymerization (ROMP) of a novel mechanophore monomer consisting of cyclic ether fused bicyclohexene. Hydrogenation of the resulting polymers led to significantly enhanced thermal stability ( > 400 °C) and excellent resistance toward acidic or basic conditions. Solution ultrasonication of the polymers resulted in up to 65% activation of the mechanophore units and conversion to backbone enol ether linkages, which then allowed facile degradation of the polymers to generate small molecule or oligomeric species under mildly acidic conditions. We also achieved solid-state mechano-activation and polymer degradation grinding the solid polymer. Force-induced hydrolytic polymer degradability can enable materials that are stable under force-free conditions but readily degrade under stress. Facile degradation of mechanically activated polymechanophores also facilitates the analysis of mechanochemical products.
为了开发能够在机械应力作用下发生广泛主链降解的聚合物,我们报道了一种聚合物体系,该体系具有水解稳定性,但在施加力时会暴露出易于水解的烯醇醚主链键。这些聚合物是通过由环醚稠合双环己烯组成的新型机械响应单体的开环易位聚合(ROMP)合成的。所得聚合物的氢化导致热稳定性显著提高(>400°C)以及对酸性或碱性条件具有优异的耐受性。聚合物的溶液超声处理导致高达65%的机械响应单元活化并转化为主链烯醇醚键,这使得聚合物在温和酸性条件下能够容易地降解以生成小分子或低聚体。我们还通过研磨固体聚合物实现了固态机械活化和聚合物降解。力诱导的水解聚合物降解性可以使材料在无外力条件下稳定,但在应力作用下容易降解。机械活化的聚机械响应体的容易降解也有助于对机械化学产物进行分析。