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Low-Temperature Acetylene Semi-Hydrogenation over the Pd1-Cu1 Dual-Atom Catalyst

Authors :
Huang, Fei
Peng, Mi
Chen, Yunlei
Cai, Xiangbin
Qin, Xuetao
Wang, Ning
Xiao, Dequan
Jin, Li
Wang, Guoqing
Wen, Xiao-Dong
Liu, Hongyang
Ma, Ding
Huang, Fei
Peng, Mi
Chen, Yunlei
Cai, Xiangbin
Qin, Xuetao
Wang, Ning
Xiao, Dequan
Jin, Li
Wang, Guoqing
Wen, Xiao-Dong
Liu, Hongyang
Ma, Ding
Publication Year :
2022

Abstract

The atomically dispersed metal catalyst or single-atom catalyst (SAC) with the utmost metal utilization efficiency shows excellent selectivity toward ethylene compared to the metal nanoparticles catalyst in the acetylene semi-hydrogenation reaction. However, these catalysts normally work at relatively high temperatures. Achieving low-temperature reactivity while preserving high selectivity remains a challenge. To improve the intrinsic reactivity of SACs, rationally tailoring the coordination environments of the first metal atom by coordinating it with a second neighboring metal atom affords an opportunity. Here, we report the fabrication of a dual-atom catalyst (DAC) that features a bonded Pd1-Cu1atomic pair anchoring on nanodiamond graphene (ND@G). Compared to the single-atom Pd or Cu catalyst, it exhibits increased reactivity at a lower temperature, with 100% acetylene conversion and 92% ethylene selectivity at 110 °C. This work provides a strategy for designing DACs for low-temperature hydrogenation by manipulating the coordination environment of catalytic sites at the atomic level. © 2022 American Chemical Society. All rights reserved.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1363082393
Document Type :
Electronic Resource