Li Houqian, Wu Jiayang, Jiang Zhen, Ma Jiaze, Zavala Victor M, Landis Clark R, Mavrikakis Manos, Huber George W
Department of Chemical and Biological Engineering, University of Wisconsin-Madison, Madison, WI 53706, USA.
Mathematics and Computer Science Division, Argonne National Laboratory, Lemont, IL 60439, USA.
Science. 2023 Aug 11;381(6658):660-666. doi: 10.1126/science.adh1853. Epub 2023 Aug 10.
Waste plastics are an abundant feedstock for the production of renewable chemicals. Pyrolysis of waste plastics produces pyrolysis oils with high concentrations of olefins (>50 weight %). The traditional petrochemical industry uses several energy-intensive steps to produce olefins from fossil feedstocks such as naphtha, natural gas, and crude oil. In this work, we demonstrate that pyrolysis oil can be used to produce aldehydes through hydroformylation, taking advantage of the olefin functionality. These aldehydes can then be reduced to mono- and dialcohols, oxidized to mono- and dicarboxylic acids, or aminated to mono- and diamines by using homogeneous and heterogeneous catalysis. This route produces high-value oxygenated chemicals from low-value postconsumer recycled polyethylene. We project that the chemicals produced by this route could lower greenhouse gas emissions ~60% compared with their production through petroleum feedstocks.
废塑料是生产可再生化学品的丰富原料。废塑料热解产生的热解油含有高浓度的烯烃(>50重量%)。传统石化工业从石脑油、天然气和原油等化石原料生产烯烃需要几个能源密集型步骤。在这项工作中,我们证明了利用热解油中的烯烃官能团,通过氢甲酰化反应可将其用于生产醛类。然后,通过均相和多相催化,这些醛类可被还原为一元醇和二元醇,氧化为一元羧酸和二元羧酸,或胺化为一元胺和二元胺。该路线从低价值的消费后回收聚乙烯生产高价值的含氧化学品。我们预计,通过该路线生产的化学品与通过石油原料生产相比,可降低约60%的温室气体排放。