Tang Shan, Seidel Falk William, Nozaki Kyoko
Department of Chemistry and Biotechnology, Graduate School of Engineering, The University of Tokyo, 7-3-1- Hongo, Bunkyo-ku, Tokyo, 113-8656, Japan.
Angew Chem Int Ed Engl. 2021 Dec 13;60(51):26506-26510. doi: 10.1002/anie.202110957. Epub 2021 Nov 9.
Polyethylene materials are highly important polymers which are produced in the largest volume among all plastics. Due to the chemical inert property of saturated carbon-carbon bonds, the degradation of polyethylene is extremely challenging, which prevents them from efficient chemical recycling. Installing functional groups in the main chain of polyethylenes may facilitate the degradation and following chemical recycling of polyethylene materials. Here we report a highly selective approach for the synthesis of high density polyethylenes bearing low content isolated in-chain carbonyls. Linear high-molecular weight polyethylene chains are synthesized via the palladium catalyzed copolymerization of ethylene with metal carbonyls. Different from traditional ethylene/CO copolymerization reactions, excellent non-alternating selectivity has been achieved. While the properties of polyethylene have been retained in the copolymer, faster degradation compared with that of polyethylene was observed upon UV light irradiation. The synthesized materials may therefore serve as more environmentally friendly alternative plastics than traditional polyethylene materials.
聚乙烯材料是非常重要的聚合物,其产量在所有塑料中位居首位。由于饱和碳 - 碳键的化学惰性,聚乙烯的降解极具挑战性,这阻碍了它们的有效化学回收。在聚乙烯主链中引入官能团可能有助于聚乙烯材料的降解及后续化学回收。在此,我们报道了一种高度选择性的方法,用于合成含有低含量孤立链内羰基的高密度聚乙烯。通过钯催化乙烯与金属羰基化合物的共聚反应合成线性高分子量聚乙烯链。与传统的乙烯/一氧化碳共聚反应不同,该反应实现了优异的非交替选择性。虽然共聚物保留了聚乙烯的性能,但在紫外光照射下,观察到其降解速度比聚乙烯更快。因此,合成的材料可能比传统聚乙烯材料更环保,可作为替代塑料。