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Orientation Effects on Plasmonic Heating of Near-Infrared Colloidal Gold Nanostructures

DOI:10.1007/s11468-020-01148-0 期刊:Plasmonics 出版年份:2020 更新时间:2025-09-23 15:21:01
摘要: Photothermal therapy assisted by plasmonic nanostructure relies on the absorption of light energy by the metallic nanoparticle. The manifestation of a rational use of plasmonic-assisted superficial laser thermal therapy procedures requires the analyses of the thermoplasmonic behavior of colloidal nanostructures in random orientation. A quantitative analysis of orientation effect on optically heating metallic nanostructures still unrevealed. Here, we evaluate the thermal properties of metallic nanoparticles (SiO2/Au core-shell particles, Au nanotriangles, Au nanorods, and Au nanocages) irradiated by polarized light. We perform 3D full-wave field analysis to compare absorption properties and temperature rise of these nanoparticles as a function of the nanostructure orientation with respect to applied field polarization. The analysis shows a major variation in joule number of asymmetrical nanostructures (up to 50%) due to orientation effects, which may limit its performance on colloidal photothermal applications. In contrast, the high degree of rotational symmetry of core-shell nanoparticles and nanocages provide greater potential in thermal-assisted phototherapy applications, as their absorption is largely independent (less than 2%) of their orientation in colloid. Our computational results establish new insights for the use of gold nanocages, as a high performance plasmonic structure for thermal applications with colloidal samples.
作者: Sajid Farooq,Diego Rativa,Renato E. de Araujo
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Investigating the orientation effects on plasmonic heating of near-infrared colloidal gold nanostructures for photothermal therapy applications.

The computational modeling demonstrated that the heating profile of plasmonic nanostructures in a colloid is highly dependent on their orientation relative to the incident light polarization. Nanostructures with higher rotational symmetry, such as gold nanocages and nanoshells, are less sensitive to orientation effects, making them excellent choices for thermal-assisted biological applications. In contrast, asymmetric nanostructures like nanoplates and nanorods show significant variation in heating ability with orientation, limiting their effectiveness in photothermal applications.

The study is limited to computational modeling and does not include experimental validation. The analysis focuses on individual nanostructures and does not account for inter-particle interactions in dense colloids.

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