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Alicia Lancaster

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Jul 2026

Atomic-Scale Imaging and Characterization of Colloidally Synthesized Gold Nanocubes Using Scanning Tunneling Microscopy.

Ligand-mediated colloidal synthesis enables controlled growth of metal nanoparticles with properties distinct from their bulk counterparts, yet direct access to their atomic-scale surface structure remains limited. Here, we achieve atomically resolved imaging and spectroscopy of individual wet-synthesized gold nanocubes using ultrahigh vacuum scanning tunneling microscopy and spectroscopy. Following solution phase ligand removal, atomically resolved topographies reveal an unreconstructed Au(100)-(1 × 1) surface on the top cubic facet in ultrahigh vacuum. Upon annealing, quasi-hexagonal reconstructed domains emerge, coexisting with the (1 × 1) phase. Besides structural transition, scanning tunneling spectroscopy reveals an unoccupied surface-state resonance near +1.2 eV of unreconstructed Au(100) surface, which is locally modified by the reconstruction, defects, and ligand residues, thereby correlating the local electron density of states with the heterogeneous atomic structure. Field-emission spectroscopy reveals systematic lowering of the work function in the ligand covered regions. Complementary vibrational action spectroscopy further reveals the C-H stretching mode of the residual ligands. Together, these results establish an atomically precise platform directly linking colloidal synthesis to nanoscale structural, electronic, and vibrational characterization of nanomaterials.

Weike Quan, Liya Bi, Athena Aber et al. · 0 citations

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