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Ligand Tuning of Localized Surface Plasmon Resonances in Antimony-Doped Tin Oxide Nanocrystals. | LitMetric

Ligand Tuning of Localized Surface Plasmon Resonances in Antimony-Doped Tin Oxide Nanocrystals.

Nanomaterials (Basel)

Institute-Materials for Electronics and Energy Technology (i-MEET), Department of Materials Science and Engineering, Friedrich-Alexander-Universität Erlangen-Nürnberg, Energy Campus Nürnberg, Fürtherstraße 250, 90429 Nürnberg, Germany.

Published: October 2022

AI Article Synopsis

  • Aliovalent-doped metal oxide nanocrystals with localized surface plasmons (LSPRs) are essential for applications requiring specific optical properties, particularly between infrared and visible light transparency.
  • Indium tin oxide (ITO), while dominant in this area, is limited by scarce indium resources, leading researchers to explore antimony-doped tin oxide (ATO) as a cost-effective alternative, despite its less favorable electronic characteristics and challenges in controlling LSPRs.
  • This study presents a method to synthesize plasmonic ATO nanocrystals using a solvothermal approach, demonstrating that ligand exchange can effectively tune LSPR energies and enhance doping efficiency beyond traditional methods, opening doors for various applications like infrared upconversion and thermal management.

Article Abstract

Aliovalent-doped metal oxide nanocrystals exhibiting localized surface plasmons (LSPRs) are applied in systems that require reflection/scattering/absorption in infrared and optical transparency in visible. Indium tin oxide (ITO) is currently leading the field, but indium resources are known to be very restricted. Antimony-doped tin oxide (ATO) is a cheap candidate to substitute the ITO, but it exhibits less advantageous electronic properties and limited control of the LSPRs. To date, LSPR tuning in ATO NCs has been achieved electrochemically and by aliovalent doping, with a significant decrease in doping efficiency with an increasing doping level. Here, we synthesize plasmonic ATO nanocrystals (NCs) via a solvothermal route and demonstrate ligand exchange to tune the LSPR energies. Attachment of ligands acting as Lewis acids and bases results in LSPR peak shifts with a doping efficiency overcoming those by aliovalent doping. Thus, this strategy is of potential interest for plasmon implementations, which are of potential interest for infrared upconversion, smart glazing, heat absorbers, or thermal barriers.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9565614PMC
http://dx.doi.org/10.3390/nano12193469DOI Listing

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