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Gold Nanoclusters

Updated: 2026-07-20

Overview

Gold nanoclusters (Au NCs) are atomic-scale gold particles (typically <3 nm) with well-defined compositions and molecule-like properties. Unlike larger nanoparticles, they exhibit discrete electronic transitions and strong photoluminescence. Their structure often consists of a gold core stabilized by organic ligands (e.g., thiolates or phosphines), enabling precise control over reactivity and optical characteristics. First synthesized in the 1990s, Au NCs bridge the gap between metal atoms and plasmonic nanoparticles. Their tunable fluorescence (visible to NIR) and catalytic sites at the atomic level make them valuable for nanotechnology and biomedical applications.

Physical and Chemical Properties

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Au NCs display size-dependent quantum confinement effects, leading to intense fluorescence with high photostability. For example, Au25(SR)18 clusters emit at ~700 nm. Their catalytic activity stems from unsaturated gold atoms at the surface, which facilitate reactions like CO oxidation. Thermodynamically, melting points decrease with cluster size due to increased surface energy. Solubility depends on ligand chemistry—hydrophilic ligands (e.g., glutathione) enable water dispersion, while hydrophobic ligands suit organic phases. Stability is critical; improper storage can cause aggregation.

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Main Applications

In biomedicine, Au NCs serve as non-toxic fluorescent probes for cellular imaging and tumor targeting. Their small size allows renal clearance, reducing long-term toxicity risks. Catalytically, they are used in fuel cells and environmental remediation (e.g., pollutant degradation). Electronically, conductive Au NC films enable flexible sensors for volatile organic compounds (VOCs). Emerging uses include photothermal therapy and as quenchers in biosensors due to Förster resonance energy transfer (FRET) effects.

Safety and Storage

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While less toxic than ionic gold, Au NCs require handling with nitrile gloves and ventilation. Prolonged exposure to aerosols may cause respiratory irritation. Storage in amber vials under argon at 4°C prevents oxidation and ligand desorption. For biological use, ensure endotoxin-free synthesis. Disposal should follow local regulations for heavy metals, though ligand coatings often reduce environmental mobility.

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B2B Procurement Guide

Industrial buyers should prioritize suppliers providing detailed characterization (TEM, UV-Vis, and FTIR data). Key specifications include gold purity (>99.9%), cluster size distribution (e.g., Au25 vs. Au38), and ligand type (e.g., PEG for biocompatibility). Bulk orders (100+ grams) may qualify for 10–20% discounts. Consider custom functionalization (e.g., amine groups for conjugation) but expect longer lead times. Verify scalability of synthesis methods to ensure batch consistency.

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