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Updated: Jun 25, 2026

Synthesis of Near-Infrared Emitting Gold Nanoclusters for Biological Applications
Published on: March 22, 2020
Controlled Oxidation and Halide Coordination for Fractal Gold Nanoparticles with Applications in Photoacoustic
Lubna Amer1, Maurice Retout2, Zhicheng Jin2
1Program in Materials Science and Engineering, University of California San Diego, La Jolla, California 92093, United States.
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Hierarchical nanoparticle assemblies formed through diffusion-limited aggregation (DLA) exhibit broad plasmonic coupling, amplified electromagnetic hotspots, and enhanced optical properties. We recently demonstrated that peptide-induced oxidative coalescence drives DLA in bis(p-sulfonatophenyl) phenylphosphine (BSPP)-stabilized silver nanoparticles, where silver's low reduction potential (Ag+/Ag0 = +0.80 V) permits the surface dissolution and redeposition that fuse particles into fractal architectures. Extending this approach to gold has remained elusive: gold's nearly 2-fold higher reduction potential (Au3+ /Au0 = +1.50 V) renders surface atoms inert to the mild oxidants that readily mobilize silver. Here, we overcome this redox barrier by treating BSPP-stabilized gold nanoparticles with hydrogen peroxide (H2O2) in the presence of halide ions and the cationic peptide RRK. A systematic screen of halide identity (F-, Cl-, Br-, I-) reveals that bromide uniquely balances oxidative etching against structural preservation: Bromide coordination lowers the effective gold oxidation potential, enabling H2O2-driven surface atom mobilization without complete dissolution. The order of reagent addition is critical─halide must interact with the gold surface before peptide-mediated clustering, or assembly is suppressed. X-ray photoelectron spectroscopy confirms partial surface oxidation, and electron microscopy reveals branched, hierarchical assembly spanning hundreds of nanometers. The resulting gold fractals exhibit broad near-infrared extinction (680-950 nm) and produce ∼2-fold photoacoustic signal enhancement over dispersed or aggregated AuNPs at 700 nm, establishing a route to DLA-derived plasmonic contrast agents that circumvent the cytotoxicity and structural instability of their silver counterparts.

