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February 7, 2023Nature Communications180 citationsOpen Access

Suppression of kernel vibrations by layer-by-layer ligand engineering boosts photoluminescence efficiency of gold nanoclusters

YZYuan ZhongJZJiangwei ZhangTLTingting Li

Key Points

  • To determine whether surface rigidification via layer-by-layer ligand engineering can suppress internal metal kernel vibrations and enhance the photoluminescence efficiency of gold nanoclusters.
  • Synthesized solution-phase gold nanoclusters using a layer-by-layer triple-ligand surface engineering approach.
  • Assessed surface rigidity, supramolecular interactions, metal kernel acoustic vibration frequency and amplitude, and non-radiative relaxation dynamics.
  • Achieved an absolute photoluminescence quantum yield of 90.3 ± 3.5% in solution-phase gold nanoclusters.
  • Surface rigidification suppressed the oscillation amplitude of low-frequency acoustic vibrations in the metal kernel, significantly impeding non-radiative electron relaxation.

Abstract

The restriction of structural vibration has assumed great importance in attaining bright emission of luminescent metal nanoclusters (NCs), where tremendous efforts are devoted to manipulating the surface landscape yet remain challenges for modulation of the structural vibration of the metal kernel. Here, we report efficient suppression of kernel vibration achieving enhancement in emission intensity, by rigidifying the surface of metal NCs and propagating as-developed strains into the metal core. Specifically, a layer-by-layer triple-ligands surface engineering is deployed to allow the solution-phase Au NCs with strong metal core-dictated fluorescence, up to the high absolute quantum yields of 90.3 ± 3.5%. The as-rigidified surface imposed by synergistic supramolecular interactions greatly influences the low-frequency acoustic vibration of the metal kernel, resulting in a subtle change in vibration frequency but a reduction in amplitude of oscillation. This scenario therewith impedes the non-radiative relaxation of electron dynamics, rendering the Au NCs with strong emission. The presented study exemplifies the linkage between surface chemistry and core-state emission of metal NCs, and proposes a strategy for brighter emitting metal NCs by regulating their interior metal core-involved motion.

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Cite This Study

Zhong et al. (2023) studied this question.

synapsesocial.com/papers/6a0132a2b124fe58198645e0https://doi.org/10.1038/s41467-023-36387-2
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