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March 21, 2026Angewandte Chemie International Edition3 citations

Pancake‐Like Surface Halide‐Fluorothiolate‐Enriched Au 12 Ag 30 Nanoclusters for Defect Passivation and Moisture Shielding in Perovskite Solar Cells

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AMAlong MaHSHe SunJZJiakang Zhang

Key Points

  • The primary aim is to synthesize and evaluate nanoclusters to enhance the performance of perovskite solar cells.
  • Synthesis of Au12Ag30 nanoclusters with specific ligand compositions.
  • Characterization using single-crystal X-ray diffraction to determine structural details.
  • Incorporation of nanoclusters in perovskite films for performance testing.
  • Power conversion efficiency increased from 23.55% to 25.53% with nanocluster addition.
  • Devices showed a 94.8% efficiency retention after 1142 hours of continuous illumination.
  • Achieved 66.7% surface halogen coverage, the highest reported for similar nanostructures.

Abstract

ABSTRACT There are few examples of the function‐oriented synthesis of atomically precise metal nanoclusters (NCs) whose ligand composition and geometry readily translate into device‐level performance. Here, we report the design and synthesis of the pancake‐like Au 12 Ag 30 (SPh 3,5− (CF 3 ) 2 ) 10 Br 20 6− (Au 12 Ag 30 ) NC, and its use to boost the power conversion efficiency (PCE) and durability of perovskite solar cells. Single‐crystal x‐ray diffraction of Au 12 Ag 30 revealed an Au 12 icosahedron wrapped by a six‐layer Ag 30 shell, the (100) facets of which are capped by 20 Br − ligands, with 10 ‐CF 3 ‐bearing thiolates forming a hydrophobic equatorial belt. Introducing 0.5 mg/mL of this cluster into ((FA 0.95 Cs 0.05 )PbI 3 ) 0.975 (MAPbBr 3 ) 0.025 perovskite films boosted the device PCE from 23.55% to 25.53% and enables 94.8% retention after 1142 h of continuous one‐sun illumination. Au 12 Ag 30 is also distinguished by its −6 superatomic charge, and 66.7% surface halogen coverage—the highest ever reported. These findings establish anisotropic halide/thiolate‐protected NCs as potent additives for simultaneous defect passivation and environmental protection in high‐efficiency optoelectronics.

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Cite This Study

Ma et al. (2026) studied this question.

synapsesocial.com/papers/69be37aa6e48c4981c677796https://doi.org/10.1002/anie.202519239
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