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侧基基团修饰赋予接枝共聚物有机硅极其广泛的热机械性能。

Pendant Group Modifications Provide Graft Copolymer Silicones with Exceptionally Broad Thermomechanical Properties.

作者信息

Husted Keith E L, Herzog-Arbeitman Abraham, Kleinschmidt Denise, Zhang Wenxu, Sun Zehao, Fielitz Alyssa J, Le An N, Zhong Mingjiang, Johnson Jeremiah A

机构信息

Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

ACS Cent Sci. 2022 Dec 23;9(1):36-47. doi: 10.1021/acscentsci.2c01246. eCollection 2023 Jan 25.

Abstract

Graft copolymers offer a versatile platform for the design of self-assembling materials; however, simple strategies for precisely and independently controlling the thermomechanical and morphological properties of graft copolymers remain elusive. Here, using a library of 92 polynorbornene--polydimethylsiloxane (PDMS) copolymers, we discover a versatile backbone-pendant sequence-control strategy that addresses this challenge. Small structural variations of pendant groups, e.g., cyclohexyl versus -hexyl, of small-molecule comonomers have dramatic impacts on order-to-disorder transitions, glass transitions, mechanical properties, and morphologies of statistical and block silicone-based graft copolymers, providing an exceptionally broad palette of designable materials properties. For example, statistical graft copolymers with high PDMS volume fractions yielded unbridged body-centered cubic morphologies that behaved as soft plastic crystals. By contrast, lamellae-forming graft copolymers provided robust, yet reprocessable silicone thermoplastics (TPs) with transition temperatures spanning over 160 °C and elastic moduli as high as 150 MPa despite being both unentangled and un-cross-linked. Altogether, this study reveals a new pendant-group-mediated self-assembly strategy that simplifies graft copolymer synthesis and enables access to a diverse family of silicone-based materials, setting the stage for the broader development of self-assembling materials with tailored performance specifications.

摘要

接枝共聚物为自组装材料的设计提供了一个多功能平台;然而,精确且独立地控制接枝共聚物的热机械性能和形态的简单策略仍然难以捉摸。在这里,我们使用包含92种聚降冰片烯-聚二甲基硅氧烷(PDMS)共聚物的文库,发现了一种通用的主链-侧基序列控制策略来应对这一挑战。小分子共聚单体侧基的微小结构变化,例如环己基与己基,对统计型和嵌段型有机硅基接枝共聚物的有序-无序转变、玻璃化转变、机械性能和形态有显著影响,提供了极为广泛的可设计材料性能。例如,具有高PDMS体积分数的统计接枝共聚物产生了未桥连的体心立方形态,表现为软塑性晶体。相比之下,形成片层的接枝共聚物提供了坚固但可再加工的有机硅热塑性塑料(TPs),其转变温度跨度超过160°C,弹性模量高达150 MPa,尽管既未缠结也未交联。总之,这项研究揭示了一种新的侧基介导的自组装策略,该策略简化了接枝共聚物的合成,并能够获得多种有机硅基材料,为具有定制性能规格的自组装材料的更广泛发展奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0c5/9881205/b39f039c0c1d/oc2c01246_0001.jpg

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