Optical Properties and Photo-Heating of Aqueous Suspensions of Silicon-Based Nanocomposite Particles with Deposited Gold

IF 0.8 4区 物理与天体物理 Q4 OPTICS
A. V. Kornilova, S. B. Ikramova, D. U. Musayeva, A. V. Syuy, V. Yu. Timoshenko
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Abstract

The optical properties of nanocomposite particles consisting of silicon cores about 100 nm in size with smaller gold nanoparticles deposited on their surface have been studied. An increase in the absorption of light in the nearinfrared region of the spectrum for the obtained nanoparticles is observed in comparison with that for nanoparticles of pure silicon or gold. Experiments on measuring the temperature of aqueous suspensions showed significantly higher rates of photoheating of nanocomposite particles upon irradiation with laser radiation at a wavelength of 810 nm compared to the case of pure silicon nanoparticles. Calculations of the distribution of the electric field showed multiple increases in its strength near nanocomposite particles upon irradiation with light in the visible and near-infrared ranges and also made it possible to find the scattering and absorption contributions to the extinction spectra of nanoparticle suspensions. The observed enhanced photoheating of nanocomposite particles can be used for application in antibacterial treatment and cancer hyperthermia.

Abstract Image

含沉积金的硅基纳米复合颗粒水悬浮液的光学特性和光热作用
摘要 研究了由尺寸约为 100 nm 的硅核和沉积在其表面的较小的金纳米粒子组成的纳米复合粒子的光学特性。与纯硅或金纳米粒子相比,所获得的纳米粒子在光谱的近红外区域对光的吸收有所增加。测量水悬浮液温度的实验表明,与纯硅纳米粒子相比,在波长为 810 纳米的激光辐射照射下,纳米复合粒子的光热率明显更高。对电场分布的计算表明,在可见光和近红外波段的光照射下,纳米复合粒子附近的电场强度会多次增加,这也使得找到纳米粒子悬浮液消光光谱中的散射和吸收贡献成为可能。观察到的纳米复合粒子光热增强现象可用于抗菌治疗和癌症热疗。
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来源期刊
Optics and Spectroscopy
Optics and Spectroscopy 物理-光谱学
CiteScore
1.60
自引率
0.00%
发文量
55
审稿时长
4.5 months
期刊介绍: Optics and Spectroscopy (Optika i spektroskopiya), founded in 1956, presents original and review papers in various fields of modern optics and spectroscopy in the entire wavelength range from radio waves to X-rays. Topics covered include problems of theoretical and experimental spectroscopy of atoms, molecules, and condensed state, lasers and the interaction of laser radiation with matter, physical and geometrical optics, holography, and physical principles of optical instrument making.
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