Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene
Huiran Zhou
1
,
Huigen Fu
1
,
Bingxin Li
1
,
B.-X. Li
1
,
Xinyu Yan
1
,
Yang Su
2
,
Xiaoli Pan
2
,
Qinghu Tang
1
,
Xiaobing Wang
1
,
Xiaohua Zhao
1
,
Yang Liu
1
,
Z Yang
3
,
Zhansheng Lu
3
,
Xiangdong Lou
1
,
Lin Li
2
Publication type: Journal Article
Publication date: 2023-07-19
scimago Q1
wos Q1
SJR: 1.623
CiteScore: 12.5
Impact factor: 7.3
ISSN: 21680485
General Chemistry
General Chemical Engineering
Environmental Chemistry
Renewable Energy, Sustainability and the Environment
Abstract
Catalytic semihydrogenation of acetylene is crucial for ethylene purification but still faces a grand challenge in circumventing deep hydrogenation and oligomerization so far, especially for the cost-effective catalysts. Herein, two Ni-based intermetallic nanocatalysts with different atomic arrangements were subtly constructed via controlling the reduction temperature of ZnO-supported NiO particles. The one reduced at 400 °C is L12-type intermetallic Ni3Zn with separated Ni3 trimers (denoted as Ni/ZnO-R400 or Ni3Zn/ZnO); another reduced at 600 °C is L10-type intermetallic NiZn with the homogeneous Ni single atoms completely isolated by Zn atoms (denoted as Ni/ZnO-R600 or NiZn/ZnO). The systematical evaluations validate NiZn/ZnO as an outstanding noble metal-free catalyst for acetylene semihydrogenation, showing a significantly enhanced selectivity toward ethylene relative to Ni3Zn/ZnO (87.5 vs −275.4% at 200 °C) through suppressing not only the unselective hydrogenation to ethane but also carbon deposition. According to catalytic evaluations with or without ethylene, microcalorimetry, and density functional theory calculations, the superior selectivity of NiZn/ZnO stems from the noncompetitive adsorption between the moderately σ-bonded acetylene over two neighboring Ni single atoms and weakly π-bonded ethylene on Ni single-atom sites due to its unique Ni–Zn–Ni ensemble.
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Total citations:
14
Citations from 2024:
12
(85.71%)
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GOST
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Zhou H. et al. Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene // ACS Sustainable Chemistry and Engineering. 2023. Vol. 11. No. 30. pp. 11052-11066.
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Zhou H., Fu H., Li B., Li B., Yan X., Su Y., Pan X., Tang Q., Wang X., Zhao X., Liu Y., Yang Z., Lu Z., Lou X., Li L. Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene // ACS Sustainable Chemistry and Engineering. 2023. Vol. 11. No. 30. pp. 11052-11066.
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TY - JOUR
DO - 10.1021/acssuschemeng.3c01036
UR - https://pubs.acs.org/doi/10.1021/acssuschemeng.3c01036
TI - Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene
T2 - ACS Sustainable Chemistry and Engineering
AU - Zhou, Huiran
AU - Fu, Huigen
AU - Li, Bingxin
AU - Li, B.-X.
AU - Yan, Xinyu
AU - Su, Yang
AU - Pan, Xiaoli
AU - Tang, Qinghu
AU - Wang, Xiaobing
AU - Zhao, Xiaohua
AU - Liu, Yang
AU - Yang, Z
AU - Lu, Zhansheng
AU - Lou, Xiangdong
AU - Li, Lin
PY - 2023
DA - 2023/07/19
PB - American Chemical Society (ACS)
SP - 11052-11066
IS - 30
VL - 11
SN - 2168-0485
ER -
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BibTex (up to 50 authors)
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@article{2023_Zhou,
author = {Huiran Zhou and Huigen Fu and Bingxin Li and B.-X. Li and Xinyu Yan and Yang Su and Xiaoli Pan and Qinghu Tang and Xiaobing Wang and Xiaohua Zhao and Yang Liu and Z Yang and Zhansheng Lu and Xiangdong Lou and Lin Li},
title = {Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene},
journal = {ACS Sustainable Chemistry and Engineering},
year = {2023},
volume = {11},
publisher = {American Chemical Society (ACS)},
month = {jul},
url = {https://pubs.acs.org/doi/10.1021/acssuschemeng.3c01036},
number = {30},
pages = {11052--11066},
doi = {10.1021/acssuschemeng.3c01036}
}
Cite this
MLA
Copy
Zhou, Huiran, et al. “Homogeneous Ni Single-Atom Sites in the NiZn Intermetallic Nanostructure for Efficient Semihydrogenation of Acetylene.” ACS Sustainable Chemistry and Engineering, vol. 11, no. 30, Jul. 2023, pp. 11052-11066. https://pubs.acs.org/doi/10.1021/acssuschemeng.3c01036.