Abstract
Ligand-induced structural transformation has been developed as an effective strategy to manipulate the geometric/electronic structures, elemental compositions, and physicochemical properties of atomically precise silver clusters. In this work, we have demonstrated how a small structural change in the configuration of a bowl-like antimonotungstate ({Sb3W30}-3) ligand can make a big difference in the synthesis of polyoxometalate (POM)-encapsulated Ag clusters (Agn@POM). The new bowl-like {Sb3W30}-3 can successfully induce the formation of a {Ag7} cluster, {Ag7(Sb3W30)}. Interestingly, the {Ag7(Sb3W30)} cluster, which can generate exposed Ag sites upon removal of three labile CH3CN ligands, serves as a common building block for constructing three new types of Agn@POM derivatives, namely polymeric {Ag7(Sb3W30)}n, {Ag15(Sb3W30)2}, and {Ag23(Sb3W30)2}, via either inter-cluster assembly or intra-cluster kernel growth processes. In addition, photocatalytic H2 evolution studies reveal the importance of accessibility to highly exposed Ag active sites and their synergistic cooperation with the redox-active bowl-like {Sb3W30}-3 ligand. This study establishes a strategic platform for the rational design and structural evolution of Agn@POM clusters, demonstrating how subtle modulation of all-inorganic POM ligands influences their geometric and catalytic properties at the atomic level.
| Original language | English |
|---|---|
| Journal | Angewandte Chemie - International Edition |
| DOIs | |
| Publication status | Accepted/In press - 2026 |
| Externally published | Yes |
Keywords
- bowl-like polyoxometalate
- photocatalytic hydrogen evolution
- silver cluster
- structural derivative
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