TY - JOUR
T1 - Atomically Precise Rod-Like Au25 Nanoclusters
T2 - A Platform for Property Modulation via Ligand Engineering and Heterometal Doping
AU - Liu, Mengxue
AU - Tang, Yun
AU - Yao, Liao Yuan
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/7/2
Y1 - 2026/7/2
N2 - Atomically precise gold nanoclusters are highly attractive owing to their well-defined structures, which enable detailed elucidation of structure–property relationships at the molecular level. Among them, rod-like Au25 nanoclusters have emerged as a representative system due to their high structural stability and tunable metal–ligand interfacial interactions. This review provides a unified perspective on rod-like Au25 nanoclusters, encompassing key characterization methods, ligand engineering strategies, heteroatom doping effects, and future research directions. Current studies reveal that ligand engineering primarily governs low-energy electronic transitions, near-infrared emission, chiroptical responses, and substrate-activation pathways by modulating shell rigidity, local asymmetry, and site exposure. In contrast, heterometal doping regulates photoluminescence behavior, energy-transfer processes, and photocatalytic and electrocatalytic performance through site-selective substitution, thereby reshaping frontier-orbital distributions, energy-level alignment, and interfacial electronic structure. Future progress will require advances in predictive synthesis, site-selective doping, operando characterization, and the integrated design of ligand engineering and heterometal doping within a single cluster platform. These developments are expected to further establish rod-like Au25 nanoclusters as a versatile model system for understanding and controlling structure-function relationships in atomically precise nanomaterials.
AB - Atomically precise gold nanoclusters are highly attractive owing to their well-defined structures, which enable detailed elucidation of structure–property relationships at the molecular level. Among them, rod-like Au25 nanoclusters have emerged as a representative system due to their high structural stability and tunable metal–ligand interfacial interactions. This review provides a unified perspective on rod-like Au25 nanoclusters, encompassing key characterization methods, ligand engineering strategies, heteroatom doping effects, and future research directions. Current studies reveal that ligand engineering primarily governs low-energy electronic transitions, near-infrared emission, chiroptical responses, and substrate-activation pathways by modulating shell rigidity, local asymmetry, and site exposure. In contrast, heterometal doping regulates photoluminescence behavior, energy-transfer processes, and photocatalytic and electrocatalytic performance through site-selective substitution, thereby reshaping frontier-orbital distributions, energy-level alignment, and interfacial electronic structure. Future progress will require advances in predictive synthesis, site-selective doping, operando characterization, and the integrated design of ligand engineering and heterometal doping within a single cluster platform. These developments are expected to further establish rod-like Au25 nanoclusters as a versatile model system for understanding and controlling structure-function relationships in atomically precise nanomaterials.
KW - atomically precise gold nanoclusters
KW - heterometal doping
KW - ligand engineering
KW - optical properties and catalysis
KW - rod-like Au
UR - https://www.scopus.com/pages/publications/105040253454
U2 - 10.1002/ejic.70240
DO - 10.1002/ejic.70240
M3 - Review article
AN - SCOPUS:105040253454
SN - 1434-1948
VL - 29
JO - European Journal of Inorganic Chemistry
JF - European Journal of Inorganic Chemistry
IS - 19
M1 - e70240
ER -