Highly Responsive Plasmon Modulation in Dopant-Segregated Nanocrystals

Nano Lett. 2023 Feb 8;23(3):908-915. doi: 10.1021/acs.nanolett.2c04199. Epub 2023 Jan 19.

Abstract

Electron transfer to and from metal oxide nanocrystals (NCs) modulates their infrared localized surface plasmon resonance (LSPR), revealing fundamental aspects of their photophysics and enabling dynamic optical applications. We synthesized and chemically reduced dopant-segregated Sn-doped In2O3 NCs, investigating the influence of radial dopant segregation on LSPR modulation and near-field enhancement (NFE). We found that core-doped NCs show large LSPR shifts and NFE change during chemical titration, enabling broadband modulation in LSPR energy of over 1000 cm-1 and of peak extinction over 300%. Simulations reveal that the evolution of the LSPR spectra during chemical reduction results from raising the surface Fermi level and increasing the donor defect density in the shell region. These results establish dopant segregation as a useful strategy to engineer the dynamic optical modulation in plasmonic semiconductor NC heterostructures going beyond what is possible with conventional plasmonic metals.

Keywords: chemical modulation; doping; indium tin oxide; localized surface plasmon resonance; metal oxide nanocrystals; near-field enhancement.