Light-to-Heat Conversion of Optically Trapped Hot Brownian Particles

Anisotropic hybrid nanostructures stand out as promising therapeutic agents in photothermal conversion-based treatments. Accordingly, understanding local heat generation mediated by light-to-heat conversion of absorbing multicomponent nanoparticles at the single-particle level has forthwith become a...

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Published inACS nano Vol. 17; no. 24; pp. 24961 - 24971
Main Authors Ortiz-Rivero, Elisa, Orozco-Barrera, Sergio, Chatterjee, Hirak, González-Gómez, Carlos D., Caro, Carlos, García-Martín, María-Luisa, González, Patricia Haro, Rica, Raúl A., Gámez, Francisco
Format Journal Article
LanguageEnglish
Published United States American Chemical Society 26.12.2023
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Summary:Anisotropic hybrid nanostructures stand out as promising therapeutic agents in photothermal conversion-based treatments. Accordingly, understanding local heat generation mediated by light-to-heat conversion of absorbing multicomponent nanoparticles at the single-particle level has forthwith become a subject of broad and current interest. Nonetheless, evaluating reliable temperature profiles around a single trapped nanoparticle is challenging from all of the experimental, computational, and fundamental viewpoints. Committed to filling this gap, the heat generation of an anisotropic hybrid nanostructure is explored by means of two different experimental approaches from which the local temperature is measured in a direct or indirect way, all in the context of hot Brownian motion theory. The results were compared with analytical results supported by the numerical computation of the wavelength-dependent absorption efficiencies in the discrete dipole approximation for scattering calculations, which has been extended to inhomogeneous nanostructures. Overall, we provide a consistent and comprehensive view of the heat generation in optical traps of highly absorbing particles from the viewpoint of the hot Brownian motion theory.
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Published ASAP December 4, 2023; Revised December 5, 2023 to correct production error in eq 4.
ISSN:1936-0851
1936-086X
1936-086X
DOI:10.1021/acsnano.3c07086