Synthesis of Au<sub>13</sub>Cu<sub>4</sub> Nanoclusters with Isomeric Mercaptobenzoic Acid Ligands.
basic_science · Level V
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- Record sourced from PubMed, PMID 40390254.
- Also identified by DOI 10.1021/acs.nanolett.5c01792.
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Abstract
Au-based alloy nanoclusters (NCs) have attracted significant interest due to their unique properties, including chirality, magnetism, luminescence, and size-dependent characteristics. Despite their promising potential, further efforts are required to explore a broader range of ligands and alloy NCs to fully unlock their capabilities. Here, [Au<sub>13</sub>Cu<sub>4</sub>(MBA)<sub>12</sub>]<sup>3-</sup> alloy NCs (MBA = mercaptobenzoic acid) were synthesized from [Au<sub>25</sub>(MBA)<sub>18</sub>]<sup>-</sup> seed NCs using MBA isomers as etching agents. The [Au<sub>25</sub>(MBA)<sub>18</sub>]<sup>-</sup> NCs were fragmented and reassembled with Cu ions into [Au<sub>13</sub>Cu<sub>4</sub>(MBA)<sub>12</sub>]<sup>3-</sup> NCs. This process, driven by MBA ligands, was monitored by time-dependent electrospray ionization mass spectrometry and optical spectroscopies. Theoretical calculations suggested a tetrahedral geometry for the [Au<sub>13</sub>Cu<sub>4</sub>(MBA)<sub>12</sub>]<sup>3-</sup> NCs stabilized by interligand interactions. Notably, the quantum yield of [Au<sub>13</sub>Cu<sub>4</sub>(<i>p</i>-MBA)<sub>12</sub>]<sup>3-</sup> NCs increased ∼14-fold compared to that of [Au<sub>25</sub>(<i>p</i>-MBA)<sub>18</sub>]<sup>-</sup> NCs. These results offer a novel approach for synthesizing water-soluble, size-focused Au-based alloy NCs, opening up the investigation of new gold alloy clusters with enhanced properties and broader applications.