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芳香醚诱导封装镍催化剂的电子结构重构用于高效催化加氢

Aromatic Ethers Induced Electronic Structure Reconstruction on Encapsulated Nickel Catalysts for High-Performance Catalytic Hydrogenation.

作者信息

Yao Yongyue, Yin Chunyu, Ma Chaofan, Li Yanni, Wang Yu, Jiang Ruikun, He Wei, Xiang Zhenli, Liu Yi, Li Xiaonian, Lu Chunshan

机构信息

State Key Laboratory Breeding Base of Green Chemistry Synthesis Technology, Zhejiang University of Technology, Hangzhou 310032, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 27;16(12):14680-14693. doi: 10.1021/acsami.3c16381. Epub 2024 Mar 18.

DOI:10.1021/acsami.3c16381
PMID:38497589
Abstract

Carbon-encapsulated metal (CEM) catalysts effectively address supported metal catalyst instability by protecting the active metal with a shell. However, mass transfer limitations lead to reduced activity for catalytic hydrogenation reaction over most CEM catalysts. Herein, we introduce a dopant strategy aimed at incorporating nickel metal within graphene-like shells (GLS) featuring oxygen-containing functional groups (OFGs). The core of this strategy involves precise control of GLS modification and the demonstrated pivotal influence of aromatic ether linkages (═C-O-C) in GLS for significant enhancement of catalytic performance. The introduction of ═C-O-C into GLS with stability was beneficial to improve the work function of the catalyst and promoted electron transmission from Ni metal core to GLS, further elevating the catalytic activity, based on the Mott-Schottky effect. In addition, the experimental characterization and density functional theory (DFT) calculations showcased that the ═C-O-C reconstructed the electronic state of GLS, imparting it highly specific for the adsorption of hydrogen and -chloronitrobenzene (-CNB) to obtain -chloroaniline (-CAN) with high selectivity. This work manifested a feasible direction for the precise modulation and design of the OFGs in CEM catalysts to achieve highly efficient catalytic hydrogenation.

摘要

碳包覆金属(CEM)催化剂通过用壳层保护活性金属有效地解决了负载型金属催化剂的不稳定性问题。然而,传质限制导致大多数CEM催化剂上催化加氢反应的活性降低。在此,我们引入一种掺杂策略,旨在将镍金属掺入具有含氧官能团(OFGs)的类石墨烯壳层(GLS)中。该策略的核心涉及对GLS修饰的精确控制,以及GLS中芳醚键(═C-O-C)对显著提高催化性能所起的关键作用。基于莫特-肖特基效应,将═C-O-C稳定地引入GLS有利于提高催化剂的功函数,并促进电子从镍金属核向GLS传输,进而提高催化活性。此外,实验表征和密度泛函理论(DFT)计算表明,═C-O-C重构了GLS的电子态,使其对氢和对氯硝基苯(-CNB)的吸附具有高度特异性,从而以高选择性获得对氯苯胺(-CAN)。这项工作为精确调控和设计CEM催化剂中的OFGs以实现高效催化加氢提供了一个可行的方向。

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