Suppr超能文献

用于改善加工性能和性能的可持续高分子量聚合物的超分子改性。

Supramolecular modification of sustainable high-molar-mass polymers for improved processing and performance.

作者信息

Görl Daniel, Haraguchi Shuichi, Hryshunin Yevhen, Thiele Sophia, Scetta Giorgia, Simula Alexandre, Wendling Matthieu, Oguz Oguzhan, Candau Nicolas, Tänzer Torne, Liebi Marianne, Plummer Christopher J G, Frauenrath Holger

机构信息

Ecole Polytechnique Fédérale de Lausanne (EPFL), Institute of Materials, Laboratory of Macromolecular and Organic Materials, Lausanne, Switzerland.

Mitsubishi Chemical Corporation, Science & Innovation Center, Kanagawa, Japan.

出版信息

Nat Commun. 2025 Jan 2;16(1):217. doi: 10.1038/s41467-024-55166-1.

Abstract

The plastic waste crisis is among humanity's most urgent challenges. However, widespread adoption of sustainable plastics is hindered by their often inadequate processing characteristics and performance. Here, we introduce a bio-inspired strategy for the modification of a representative high molar mass, biodegradable aliphatic polyester that helps overcome these limitations and remains effective at molar masses far greater than the entanglement molar mass. We use co-assembly of oligopeptide-based polymer end groups and a low molar mass additive to create a hierarchical structure characterized by regularly spaced nanofibrils interconnected by entangled polymer segments. The modified materials show a rubbery plateau at temperatures above their melting point, associated with strongly increased melt strength, extraordinary melt extensibility, improved dimensional stability, and accelerated crystallization. These thermomechanical property changes open up otherwise inaccessible processing routes and offer considerable scope for improving solid-state properties, thereby addressing typical shortcomings of sustainable alternatives to conventional plastics.

摘要

塑料垃圾危机是人类面临的最紧迫挑战之一。然而,可持续塑料的广泛应用受到其加工特性和性能往往不足的阻碍。在此,我们引入一种受生物启发的策略,用于改性一种具有代表性的高摩尔质量可生物降解脂肪族聚酯,该策略有助于克服这些限制,并且在远高于缠结摩尔质量的摩尔质量下仍然有效。我们利用基于寡肽的聚合物端基与低摩尔质量添加剂的共组装,创建一种具有分层结构的材料,其特征是由缠结的聚合物链段相互连接的规则间隔纳米纤维。改性材料在高于其熔点的温度下呈现橡胶态平台,这与熔体强度大幅提高、非凡的熔体拉伸性、改善的尺寸稳定性以及加速结晶相关。这些热机械性能变化开辟了原本无法实现的加工路线,并为改善固态性能提供了相当大的空间,从而解决了传统塑料可持续替代品的典型缺点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e38/11696020/c5a4699a1478/41467_2024_55166_Fig1_HTML.jpg

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