Transformation of Active Sites on Cobalt Sulfide Nanoclusters With Similar Nuclearities

ABSTRACT Reduced cobalt sulfide nanoclusters are promising materials; however, their synthesis has long posed significant challenges due to the high reactivity of both cobalt and sulfur. Furthermore, the respective influence of cobalt and sulfur on the properties remains unknown. Herein, we introduce a dual‐ligand strategy to successfully synthesize three such nanoclusters with atomic precision. This strategy not only enhances the stability but also modulates both structural dimensions and surface ligand distributions, resulting in distinct catalytic activities and unexpected active site interconversion among cobalt, thiolate sulfur, and bare sulfur in the as‐obtained cobalt sulfide nanoclusters. More novel findings such as “habitat segregation” and ligand mutual deletion further demonstrate the modulation diversity of the dual‐ligand strategy. Due to the structural integrity maintained during catalysis, our work clarifies that cobalt sulfide itself is intrinsically active for catalysis. The identification of thiolate and bare sulfur active sites provides guidance for the catalysis performance improvement of cobalt sulfide nanoclusters; the novel finding that the dipole moment direction or coordination number correlates with the active site, offers an intrinsic spatial descriptor for the catalytically active sites of cobalt sulfide nanoclusters. Overall, this work has important implications for the synthesis, modulation, and structure‐property correlation of cobalt sulfide nanoclusters.

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Publication Details

Journal
Angewandte Chemie
Published
2026-09-18
DOI
https://doi.org/10.1002/ange.5734835
Primary Topic
Nanocluster Synthesis and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Transformation of Active Sites on Cobalt Sulfide Nanoclusters With Similar Nuclearities

Runguo Wang, Bin Chen, Shengli Zhuang, Zhikun Wu et al.
Angewandte Chemie
Nanocluster Synthesis and Applications
article

Transformation of Active Sites on Cobalt Sulfide Nanoclusters With Similar Nuclearities

Runguo Wang, Bin Chen, Shengli Zhuang, Zhikun Wu, Chengming Wang, Guowei Guan, He Liu, Nan Yan, Liang Fang, Qing You, Xiang Zhang
article en

Abstract

ABSTRACT Reduced cobalt sulfide nanoclusters are promising materials; however, their synthesis has long posed significant challenges due to the high reactivity of both cobalt and sulfur. Furthermore, the respective influence of cobalt and sulfur on the properties remains unknown. Herein, we introduce a dual‐ligand strategy to successfully synthesize three such nanoclusters with atomic precision. This strategy not only enhances the stability but also modulates both structural dimensions and surface ligand distributions, resulting in distinct catalytic activities and unexpected active site interconversion among cobalt, thiolate sulfur, and bare sulfur in the as‐obtained cobalt sulfide nanoclusters. More novel findings such as “habitat segregation” and ligand mutual deletion further demonstrate the modulation diversity of the dual‐ligand strategy. Due to the structural integrity maintained during catalysis, our work clarifies that cobalt sulfide itself is intrinsically active for catalysis. The identification of thiolate and bare sulfur active sites provides guidance for the catalysis performance improvement of cobalt sulfide nanoclusters; the novel finding that the dipole moment direction or coordination number correlates with the active site, offers an intrinsic spatial descriptor for the catalytically active sites of cobalt sulfide nanoclusters. Overall, this work has important implications for the synthesis, modulation, and structure‐property correlation of cobalt sulfide nanoclusters.

Angewandte Chemie
University of Science and Technology of China (CN), Anhui University (CN), Hefei Institutes of Physical Science (CN), Hefei Material Science and Technology Center (CN)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Youth Innovation Promotion Association of the Chinese Academy of Sciences, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Innovative Program of Development Foundation of Hefei Center for Physical Science and Technology
Openalex Percentile: Top 24%
Nanocluster Synthesis and Applications
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