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单分散环状聚合物机械化学:断裂动力学以及超声和球磨研磨下的动态记忆效应

Monodisperse Cyclic Polymer Mechanochemistry: Scission Kinetics and the Dynamic Memory Effect with Ultrasonication and Ball-Mill Grinding.

作者信息

Noh Jinkyung, Koo Mo Beom, Jung Jisoo, Peterson Gregory I, Kim Kyoung Taek, Choi Tae-Lim

机构信息

Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea.

Department of Chemistry and Research Institute of Basic Science, Incheon National University, Incheon 22012, Republic of Korea.

出版信息

J Am Chem Soc. 2023 Aug 23;145(33):18432-18438. doi: 10.1021/jacs.3c04733. Epub 2023 Jul 24.

Abstract

A series of monodisperse cyclic and linear poly(d,l-lactide)s (-PLA and -PLA, respectively) were prepared with various degrees of polymerization (DP) using an iterative convergent synthesis approach. The absence of a molecular weight distribution provided us a chance to study their mechanochemical reactivity without obstructions arising from the size distribution. Additionally, we prepared - and -PLAs with identical DPs, which enabled us to attribute differences in scission rates to the cyclic polymer architecture alone. The polymers were subjected to ultrasonication (US) and ball-mill grinding (BMG), and their degradation kinetics were explored. Up to 9.0 times larger scission rates were observed for -PLA (compared to -PLA) with US, but the difference was less than 1.9 times with BMG. Fragmentation requires two backbone scission events for -PLA, and we were able to observe linear intermediates (formed after a single scission) for the first time. We also developed a new method of studying the dynamic memory effect in US by characterizing and comparing the daughter fragment molecular weight distributions of - and -PLAs. These results provide new insights into the influence of the cyclic polymer architecture on mechanochemical reactions as well as differences in reactivity observed with US and BMG.

摘要

采用迭代收敛合成方法制备了一系列不同聚合度(DP)的单分散环状和线性聚(d,l-丙交酯)(分别为-cPLA和-lPLA)。分子量分布的缺失为我们提供了一个机会,来研究它们的机械化学反应性,而不会受到尺寸分布引起的阻碍。此外,我们制备了具有相同DP的-cPLA和-lPLA,这使我们能够将断裂速率的差异仅归因于环状聚合物结构。对这些聚合物进行超声处理(US)和球磨研磨(BMG),并探索它们的降解动力学。对于-cPLA,超声处理时观察到的断裂速率比-lPLA大9.0倍(相比之下),但球磨研磨时差异小于1.9倍。对于-cPLA,断裂需要两个主链断裂事件,并且我们首次能够观察到线性中间体(在单次断裂后形成)。我们还通过表征和比较-cPLA和-lPLA的子片段分子量分布,开发了一种研究超声处理中动态记忆效应的新方法。这些结果为环状聚合物结构对机械化学反应的影响以及超声处理和球磨研磨中观察到的反应性差异提供了新的见解。

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