Chemical Materials Science, Department of Chemistry, University of Konstanz, Konstanz, Germany.
Nature. 2021 Feb;590(7846):423-427. doi: 10.1038/s41586-020-03149-9. Epub 2021 Feb 17.
Plastics are key components of almost any technology today. Although their production consumes substantial feedstock resources, plastics are largely disposed of after their service life. In terms of a circular economy, reuse of post-consumer sorted polymers ('mechanical recycling') is hampered by deterioration of materials performance. Chemical recycling via depolymerization to monomer offers an alternative that retains high-performance properties. The linear hydrocarbon chains of polyethylene enable crystalline packing and provide excellent materials properties. Their inert nature hinders chemical recycling, however, necessitating temperatures above 600 degrees Celsius and recovering ethylene with a yield of less than 10 per cent. Here we show that renewable polycarbonates and polyesters with a low density of in-chain functional groups as break points in a polyethylene chain can be recycled chemically by solvolysis with a recovery rate of more than 96 per cent. At the same time, the break points do not disturb the crystalline polyethylene structure, and the desirable materials properties (like those of high-density polyethylene) are fully retained upon recycling. Processing can be performed by common injection moulding and the materials are well-suited for additive manufacturing, such as 3D printing. Selective removal from model polymer waste streams is possible. In our approach, the initial polymers result from polycondensation of long-chain building blocks, derived by state-of-the-art catalytic schemes from common plant oil feedstocks, or microalgae oils. This allows closed-loop recycling of polyethylene-like materials.
塑料是当今几乎所有技术的关键组成部分。尽管它们的生产消耗了大量的原料资源,但在使用寿命结束后,塑料大多被丢弃。在循环经济中,消费后分类聚合物(“机械回收”)的再利用受到材料性能恶化的阻碍。通过解聚单体进行化学回收提供了一种替代方法,可保留高性能特性。聚乙烯的线性碳氢链能够实现晶体堆积,并提供优异的材料性能。然而,它们的惰性阻碍了化学回收,需要在 600 摄氏度以上的温度下进行,并且回收的乙烯产率低于 10%。在这里,我们表明,具有低链内官能团密度的可再生聚碳酸酯和聚酯作为聚乙烯链中的断点,可以通过与溶剂解聚进行化学回收,回收率超过 96%。同时,这些断点不会干扰结晶聚乙烯结构,并且在回收后完全保留了所需的材料性能(如高密度聚乙烯的性能)。可以通过常见的注塑成型进行加工,并且这些材料非常适合增材制造,如 3D 打印。从模型聚合物废料流中进行选择性去除是可能的。在我们的方法中,初始聚合物是通过长链构建块的缩聚得到的,这些构建块是通过最先进的催化方案从常见的植物油原料或微藻油中获得的。这允许类似聚乙烯的材料进行闭环回收。