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Updated: Jan 10, 2026

Ligand-Mediated Nucleation and Growth of Palladium Metal Nanoparticles
Published on: June 25, 2018
Understanding the NIR Emission of Metal Nanoclusters Through a Ligand-Shell-Kernel Triad Picture
Rui Zhao1, Linlin Zeng1, Fangming Zhao1
1Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui 230026, P. R. China.
None:
Near-infrared (NIR)-emitting noble metal nanoclusters have received significant research interest due to their low toxicity and feasible tunability, yet their practical applications remain constrained because of low photoluminescence quantum yields (PLQYs). Although ligand engineering and structural modulation strategies have advanced, the synergistic interplay among ligands, shells, and kernels in governing luminescence mechanisms remains poorly understood. Here, we elucidate the structural determinants of emission efficiency by comparing the photophysics of two quasi-isomeric Pt1Ag28 nanoclusters stabilized by adamantanethiol (HS-Adm) and triphenylphosphine (PPh3) (denoted as Pt1Ag28-1) and cyclohexanethiol (HS-C6H11) and PPh3 (denoted as Pt1Ag28-2). A 1.8-fold enhancement in PLQY for Pt1Ag28-1 (4.9%) relative to Pt1Ag28-2 (2.7%) was observed. This improvement arises from the synergistic effects of rigid adamantanethiol ligands (in Pt1Ag28-1), which suppress high-frequency vibrational modes, the geometric stability of the face-centered cubic (FCC) kernel, and reduced electron-vibration coupling, collectively reducing nonradiative relaxation. By establishing a ligand-shell-kernel triad framework, we demonstrate that rigid ligands minimize nonradiative decay, structural rigidity suppresses electron-vibration coupling in the shell, and a compact kernel facilitates blue-shifted emission. This multidimensional model transcends conventional approaches focused on isolated structural factors, offering a rational design principle for engineering high-performance nanocluster emitters with tailored PLQYs.
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