以无机瓶刷和梳状聚合物为平台开发超软无溶剂弹性体

IF 4.7 Q1 POLYMER SCIENCE
Edip Ajvazi, Felix Bauer, Paul Strasser, Oliver Brüggemann, Rene Preuer, Milan Kracalik, Sabine Hild, Mahdi Abbasi, Ingrid Graz and Ian Teasdale*, 
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引用次数: 0

摘要

由于具有独特的流变和机械特性,瓶刷聚合物是软骨和超软弹性体等生物和合成系统的独特成分。然而,虽然它们的流变特性可以通过其大分子结构进行精确控制,但目前可用的化学成分却仅限于少数几种具有脂肪族碳骨架的合成聚合物。在此,我们基于聚二甲基硅氧烷(PDMS)和聚磷氮(PPz)化学的独特组合,设计并合成了一系列无机瓶刷聚合物。这种非碳基平台可以简单地改变基于瓶丛聚合物的弹性体的重要结构尺寸。将 PDMS 接枝到 PPz 上,反之亦然,这也使我们能够进一步利用这些聚合物结合在单一材料中的独特性能。这些新型杂化底丛聚合物经固化后可制成超软无溶剂弹性体。我们系统地研究了结构参数和化学功能对其流变特性的影响。除了形成超软弹性体外,还观察到弹性体的能量耗散特性大大高于基于 PDMS 的弹性体。因此,这项研究为无溶剂超软弹性体提供了一个稳健的合成平台,具有作为仿生阻尼材料的潜在应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Inorganic Bottlebrush and Comb Polymers as a Platform for Supersoft, Solvent-Free Elastomers

Inorganic Bottlebrush and Comb Polymers as a Platform for Supersoft, Solvent-Free Elastomers

Inorganic Bottlebrush and Comb Polymers as a Platform for Supersoft, Solvent-Free Elastomers

Due to their unique rheological and mechanical properties, bottlebrush polymers are inimitable components of biological and synthetic systems such as cartilage and ultrasoft elastomers. However, while their rheological properties can be precisely controlled through their macromolecular structures, the current chemical spectrum available is limited to a handful of synthetic polymers with aliphatic carbon backbones. Herein we design and synthesize a series of inorganic bottlebrush polymers based on a unique combination of polydimethylsiloxane (PDMS) and polyphosphazene (PPz) chemistry. This non-carbon-based platform allows for simple variation of the significant architectural dimensions of bottlebrush-polymer-based elastomers. Grafting PDMS to PPz and vice versa also allows us to further exploit the unique properties of these polymers combined in a single material. These novel hybrid bottlebrush polymers were cured to give supersoft, solvent-free elastomers. We systematically studied the effect of architectural parameters and chemical functionality on their rheological properties. Besides forming supersoft elastomers, the energy dissipation characteristics of the elastomers were observed to be considerably higher than those for PDMS-based elastomers. Hence this work introduces a robust synthetic platform for solvent-free supersoft elastomers with potential applications as biomimetic damping materials.

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