化学
催化作用
聚氯乙烯
金属
镓
化学工程
阳离子聚合
氢
氢键
氯化氢
盐(化学)
无机化学
水溶液
氯化物
氧化态
液态金属
多相催化
纳米颗粒
分子动力学
聚合物
溶剂化壳
过氧化氢
反应机理
过渡金属
液态
铂金
作者
Benjamin H. Crockett Zingg,Nabihan Abdul Rahman,Nishu Devi,Anya Zornes,Joshua T. Damron,Ernesto C. Zuleta S.,Yan-Ru Lin,José David Arregui-Mena,Chang Liu,Murillo L. Martins,Shukai Yao,Mo Li,De‐en Jiang,Harry M. Meyer,Zili Wu,Felipe Polo‐Garzon
摘要
Abstract Polyvinyl chloride (PVC) is ubiquitous yet challenging to recycle due to its tendency to thermally decompose above 250 °C, releasing toxic, corrosive chlorinated compounds, and its inability to melt. Here, we report a catalytic strategy for PVC upcycling at 160 °C using gallium liquid metal particles (Ga-LMP) featuring a dynamic Ga-GaOOH core–shell architecture. These catalysts enable concurrent dechlorination and hydrogen evolution, yielding up to 7% H2 (based on initial hydrogen atoms in PVC) along with a highly dechlorinated (>95%) carbonaceous solid and aqueous HCl. Mechanistic investigations combining X-ray photoelectron spectroscopy, infrared spectroscopy, solid-state NMR, inelastic neutron scattering, and ab initio molecular dynamics reveal a synergistic interplay between Gaδ+ sites in the GaOOH shell and metallic Ga0 in the core. Cationic Ga initiates C–Cl bond activation and HCl formation, while progressive reduction of the shell exposes Ga0 sites that promote C–H activation and H2 evolution. Control experiments with a Ga salt and bulk Ga liquid metal confirmed that neither oxidation state alone can achieve both transformations efficiently. This work establishes a dynamic dual-site paradigm for liquid metal catalysis, in which the in situ evolution and coexistence of oxidized and metallic species enable sequential and cooperative bond activation pathways. These findings provide a general design principle for novel liquid metal catalysts that target challenging polymer transformations under mild conditions.
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