双功能
材料科学
热塑性弹性体
共聚物
单体
聚合
分散性
热塑性塑料
高分子化学
聚合物
丙交酯
化学工程
弹性体
背景(考古学)
有机化学
复合材料
化学
催化作用
工程类
古生物学
生物
作者
Moritz Meier‐Merziger,Jan Imschweiler,Frank Hartmann,Bart‐Jan Niebuur,Tobias Kraus,Markus Gallei,Holger Frey
标识
DOI:10.1002/anie.202310519
摘要
Current environmental challenges and the shrinking fossil-fuel feedstock are important criteria for the next generation of polymer materials. In this context, we present a fully bio-based material, which shows promise as a thermoplastic elastomer (TPE). Due to the use of β-farnesene and L-lactide as monomers, bio-based feedstocks, namely sugar cane and corn, can be used. A bifunctional initiator for the carbanionic polymerization was employed, to permit an efficient synthesis of ABA-type block structures. In addition, the "green" solvent MTBE (methyl tert-butyl ether) was used for the anionic polymerisation, enabling excellent solubility of the bifunctional anionic initiator. This afforded low dispersity (Đ=1.07 to 1.10) and telechelic polyfarnesene macroinitiators. These were employed for lactide polymerization to obtain H-shaped triblock copolymers. TEM and SAXS revealed clearly phase-separated morphologies, and tensile tests demonstrated elastic mechanical properties. The materials featured two glass transition temperatures, at - 66 °C and 51 °C as well as gyroid or cylindrical morphologies, resulting in soft elastic materials at room temperature.
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