4.8 Article

Black Au-Decorated TiO2 Produced via Laser Ablation in Liquid

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 5, 页码 6522-6531

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c20463

关键词

laser ablation in liquid; hybrid nanoparticles; titanium dioxide; gold; plasmonics; SERS; photothermal conversion

资金

  1. Russian Science Foundation [19-79-00214]
  2. Ministry of Science and Higher Education of the Russian Federation [M-4321.2021.1.2, MK3514.2019.2]
  3. Russian Science Foundation [19-79-00214] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

The rational combination of plasmonic and all-dielectric concepts within hybrid nanomaterials provides a promising route toward devices with ultimate performance and extended modalities. Fabricated hybrids with amorphous TiO2 nanospheres decorated and doped with Au nanoclusters demonstrate remarkable light-absorbing properties in the visible and near-IR spectral range, and were utilized to demonstrate applications such as a catalytically passive SERS biosensor and a solar steam generator.
The rational combination of plasmonic and all-dielectric concepts within hybrid nanomaterials provides a promising route toward devices with ultimate performance and extended modalities. Spectral matching of plasmonic and Mie-type resonances for such nanostructures can only be achieved for their dissimilar characteristic sizes, thus making the resulting hybrid nanostructure geometry complex for practical realization and large-scale replication. Here, we produced amorphous TiO2 nanospheres decorated and doped with Au nanoclusters via single-step nanosecond-laser irradiation of commercially available TiO2 nanopowders dispersed in aqueous HAuCl4. Fabricated hybrids demonstrate remarkable light-absorbing properties (averaged value approximate to 96%) in the visible and near-IR spectral range mediated by bandgap reduction of the laser-processed amorphous TiO2 as well as plasmon resonances of the decorating Au nanoclusters. The findings are supported by optical spectroscopy, electron energy loss spectroscopy, transmission electron microscopy, and electromagnetic modeling. Light-absorbing and plasmonic properties of the produced hybrids were implemented to demonstrate catalytically passive SERS biosensor for identification of analytes at trace concentrations and solar steam generator that permitted to increase water evaporation rate by 2.5 times compared with that of pure water under identical 1 sun irradiation conditions.

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