| Literature DB >> 28409632 |
George P Zograf1, Mihail I Petrov1,2, Dmitry A Zuev1, Pavel A Dmitriev1, Valentin A Milichko1, Sergey V Makarov1, Pavel A Belov1.
Abstract
We propose a novel photothermal approach based on resonant dielectric nanoparticles, which possess imaginary part of permittivity significantly smaller as compared to metal ones. We show both experimentally and theoretically that a spherical silicon nanoparticle with a magnetic quadrupolar Mie resonance converts light to heat up to 4 times more effectively than similar spherical gold nanoparticle at the same heating conditions. We observe photoinduced temperature raise up to 900 K with the silicon nanoparticle on a glass substrate at moderate intensities (<2 mW/μm2) and typical laser wavelength (633 nm). The advantage of using crystalline silicon is the simplicity of local temperature control by means of Raman spectroscopy working in a broad range of temperatures, that is, up to the melting point of silicon (1690 K) with submicrometer spatial resolution. Our CMOS-compatible heater-thermometer nanoplatform paves the way to novel nonplasmonic photothermal applications, extending the temperature range and simplifying the thermoimaging procedure.Entities:
Keywords: Optical heating; Raman scattering; magnetic optical resonances; nanothermometry; silicon nanoparticle
Year: 2017 PMID: 28409632 DOI: 10.1021/acs.nanolett.7b00183
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189