Interface-Designed Relay Hydrogenation-Hydrogenolysis over Base-Metal Catalysts Enables Stereochemically Controlled Upcycling of Waste PET to CHDM

催化作用 材料科学 继电器 化学工程 纳米技术 化学 废物管理 多相催化 纳米颗粒 有机化学
作者
Qiuyan Wang,Jiaxuan Fan,Zhengqing Ji,Yao Lu,Huidong Lv,Lei Wang,Fei Huang
出处
期刊:ACS Catalysis [American Chemical Society]
标识
DOI:10.1021/acscatal.6c01517
摘要

The catalytic upcycling of poly(ethylene terephthalate) (PET) into monomer-grade diols with controlled stereochemistry remains challenging because of polymer inertness, limited stereocontrol in downstream hydrogenation, and the reliance on precious-metal catalysts under forcing conditions. Here, we report a relay hydrogenation-hydrogenolysis strategy enabled by interface-designed base-metal catalysts for the one-pot conversion of PET into 1,4-cyclohexanedimethanol (CHDM) with a trans-enriched stereochemical profile. An inverse ZrO 2 /Ni catalyst efficiently promotes aromatic-ring hydrogenation by enhancing H 2 activation while moderating aromatic adsorption, achieving near-complete hydrogenation of PET under mild conditions. Subsequently, a m-ZnO/Cu catalyst selectively facilitates ester hydrogenolysis, affording CHDM in yields up to ∼86% with trans/cis ratio exceeding 3.60 in the one-pot system. Mechanistic studies reveal that CHDM stereoselectivity does not originate from ester bond cleavage itself but emerges from stage-dependent catalytic regulation and is strongly influenced by the evolving reaction environment, particularly ethylene glycol generated in situ during hydrogenolysis. Validation using real post-consumer PET feedstocks—including bottles, films, food containers, and mulch films—demonstrates consistently high CHDM yields (73−79%) with trans-enriched stereochemistry. Catalyst-recycling experiments confirm stable performance over multiple cycles after appropriate regeneration. Furthermore, techno-economic and life cycle assessments indicate that this PET upcycling route reduces the carbon footprint of CHDM production by approximately 3.6-fold compared with conventional naphtha-based processes. This work establishes interface-designed base-metal catalysis as a viable platform for the stereochemically controlled and responsible upcycling of waste polyesters.
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