Size- and Wavelength-Selective Optical Heating in Mie-Resonant Silicon Nanospheres for Nanothermometry and Photothermal Applications

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2024-09-30 DOI:10.1021/acsanm.4c0438910.1021/acsanm.4c04389
Kana Kondo, Mojtaba Karimi Habil*, Kojiro Senda, Masato Adachi, Kenta Morita, Tatsuo Maruyama, Hiroshi Sugimoto* and Minoru Fujii, 
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Abstract

The photothermal heating properties of perfectly spherical crystalline silicon nanoparticles having Mie resonances in the visible range are studied under different illumination wavelengths by using the Raman scattering peak as a nanothermometer. Analytical calculations reveal that the magnetic quadrupole (MQ) Mie mode is the most suitable mode for photothermal heating. The experimentally obtained size and illumination wavelength dependence of the temperature rise agrees quantitatively with numerical simulations, and the heating efficiency reaches up to 381 K/(mW/μm2) when the illumination wavelength of 633 nm matches the MQ resonance. Conversely, tuning the illumination wavelength to a relatively nonabsorbing mode, such as the electric dipole (ED) mode, can significantly reduce the heating effect. In this context, the ED mode functions as a practically heating-less nanoantenna, promoting the surface-enhanced fluorescence of nearby dye molecules, while high-Q modes, e.g., MQ and electric quadrupole (EQ) modes, serve as an optical heating platform. Furthermore, the photothermal heating and Raman thermometry of silicon nanoparticles in water and in cancer cells are demonstrated.

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用于纳米温度测量和光热应用的米褶共振硅纳米球的尺寸和波长选择性光学加热技术
利用拉曼散射峰作为纳米温度计,研究了在可见光范围内具有米氏共振的完全球形晶体硅纳米粒子在不同照明波长下的光热加热特性。分析计算显示,磁四极(MQ)米氏模式是最适合光热加热的模式。实验得出的温升大小与照明波长的相关性与数值模拟的定量结果一致,当 633 nm 的照明波长与 MQ 共振相匹配时,加热效率高达 381 K/(mW/μm2)。相反,将照明波长调整为相对非吸收模式(如电偶极子(ED)模式)可显著降低加热效果。在这种情况下,ED 模式实际上是一种无加热纳米天线,可促进附近染料分子的表面增强荧光,而高 Q 值模式,如 MQ 和电四极(EQ)模式,则是一种光学加热平台。此外,还展示了硅纳米粒子在水中和癌细胞中的光热加热和拉曼测温。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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