Ag14 Nanocluster Featuring an Unconventional Non-FCC Metal Skeleton and Its Sensitivity to Oxygen

Abstract Despite the significant advancements in noble metal-based nanocluster research, challenges remain in making specific metal kernel geometries, especially protected by bulky ligand shells. Here, we synthesized and structurally characterized a neutral silver cluster, [Ag14(TRZ)12(TPP)3], where TRZ and TPP refer to 6-(dibutylamino)–1,3,5-triazine-2,4-dithiolate and triphenylphosphine, respectively. The cluster was synthesized under ambient conditions using a TPP-assisted, solvent-mediated structural transformation from the [Ag31(TRZ)10]2– precursor cluster. This non-face-centered cubic (non-fcc) cluster features a central Ag5 trigonal bipyramidal core surrounded by a distinct Ag(6+3) tricapped trigonal prismatic (TTP) shell. This type of unconventional metal skeleton differs significantly from the well-known fcc-type Ag14 cluster, which typically has an octahedral Ag6 core and a cubic Ag8 shell. It is also the first metal cluster to be structurally resolved with TRZ ligands. Quantum chemical calculations indicate that although the non-fcc Ag14 skeleton has a lower cohesive energy than the fcc Ag14 analogues, bulky TRZ ligands featuring multiple sulfide linkages and n-butyl chains stabilize it. The as-synthesized Ag14 cluster is non-emissive, but exposure to oxygen converts it into an orange-emitting species. Density functional theory calculations indicate that the TTP Ag(6+3) shell prefers binding with oxygen. Emissive lifetime and femtosecond transient absorption showed that oxygenation provided greater stabilization of excited states than the parent Ag14 cluster. This study presents a new approach for designing metal clusters with unique structural frameworks with unconventional ligand environments and allows for harvesting surface-sensitive electronic properties.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-10-07
DOI
https://doi.org/10.1021/acsami.6c11805
Primary Topic
Nanocluster Synthesis and Applications
Type
article
Field-Weighted Citation Impact
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article

Ag14 Nanocluster Featuring an Unconventional Non-FCC Metal Skeleton and Its Sensitivity to Oxygen

Biswarup Pathak, Arijit Jana, K. V. Adarsh, Thalappil Pradeep et al.
ACS Applied Materials & Interfaces
Nanocluster Synthesis and Applications
article

Ag14 Nanocluster Featuring an Unconventional Non-FCC Metal Skeleton and Its Sensitivity to Oxygen

Biswarup Pathak, Arijit Jana, K. V. Adarsh, Thalappil Pradeep, Akhil S. Nair, Stefanie Dehnen, Nonappa Nonappa, Ajay K. Poonia, Vivek Yadav, Jayoti Roy
article en

Abstract

Abstract Despite the significant advancements in noble metal-based nanocluster research, challenges remain in making specific metal kernel geometries, especially protected by bulky ligand shells. Here, we synthesized and structurally characterized a neutral silver cluster, [Ag14(TRZ)12(TPP)3], where TRZ and TPP refer to 6-(dibutylamino)–1,3,5-triazine-2,4-dithiolate and triphenylphosphine, respectively. The cluster was synthesized under ambient conditions using a TPP-assisted, solvent-mediated structural transformation from the [Ag31(TRZ)10]2– precursor cluster. This non-face-centered cubic (non-fcc) cluster features a central Ag5 trigonal bipyramidal core surrounded by a distinct Ag(6+3) tricapped trigonal prismatic (TTP) shell. This type of unconventional metal skeleton differs significantly from the well-known fcc-type Ag14 cluster, which typically has an octahedral Ag6 core and a cubic Ag8 shell. It is also the first metal cluster to be structurally resolved with TRZ ligands. Quantum chemical calculations indicate that although the non-fcc Ag14 skeleton has a lower cohesive energy than the fcc Ag14 analogues, bulky TRZ ligands featuring multiple sulfide linkages and n-butyl chains stabilize it. The as-synthesized Ag14 cluster is non-emissive, but exposure to oxygen converts it into an orange-emitting species. Density functional theory calculations indicate that the TTP Ag(6+3) shell prefers binding with oxygen. Emissive lifetime and femtosecond transient absorption showed that oxygenation provided greater stabilization of excited states than the parent Ag14 cluster. This study presents a new approach for designing metal clusters with unique structural frameworks with unconventional ligand environments and allows for harvesting surface-sensitive electronic properties.

ACS Applied Materials & Interfaces
Karlsruhe Institute of Technology (DE), Tampere University (FI), Indian Institute of Technology Madras (IN), Indian Institute of Science Education and Research, Bhopal (IN), Indian Institute of Technology Indore (IN)
Openalex Percentile: Top 27%
Nanocluster Synthesis and Applications
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