氢气储存
纳米颗粒
沸石
化学工程
氢
化学
材料科学
纳米技术
催化作用
有机化学
工程类
作者
Chengxu Li,Guangyuan He,Ziqiang Qu,Kai Zhang,Liwen Guo,Tianjun Zhang,Jichao Zhang,Qiming Sun,Donghai Mei,Jihong Yu
标识
DOI:10.1002/ange.202409001
摘要
Abstract Formic acid (FA) dehydrogenation and CO 2 hydrogenation to FA/formate represent promising methodologies for the efficient and clean storage and release of hydrogen, forming a CO 2 ‐neutral energy cycle. Here, we report the synthesis of highly dispersed and stable bimetallic Pd‐based nanoparticles, immobilized on self‐pillared silicalite‐1 (SP‐S‐1) zeolite nanosheets using an incipient wetness co‐impregnation technique. Owing to the highly accessible active sites, effective mass transfer, exceptional hydrophilicity, and the synergistic effect of the bimetallic species, the optimized PdCe 0.2 /SP‐S‐1 catalyst demonstrated unparalleled catalytic performance in both FA dehydrogenation and CO 2 hydrogenation to formate. Remarkably, it achieved a hydrogen generation rate of 5974 mol H2 mol Pd −1 h −1 and a formate production rate of 536 mol formate mol Pd −1 h −1 at 50 °C, surpassing most previously reported heterogeneous catalysts under similar conditions. Density functional theory calculations reveal that the interfacial effect between Pd and cerium oxide clusters substantially reduces the activation barriers for both reactions, thereby increasing the catalytic performance. Our research not only showcases a compelling application of zeolite nanosheet‐supported bimetallic nanocatalysts in CO 2 ‐mediated hydrogen storage and release but also contributes valuable insights towards the development of safe, efficient, and sustainable hydrogen technologies.
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