AN IMPACT OF THE LASER IRRADIATION TIME ON PROPERTIES OF COLLOIDAL SOLUTIONS OF SILICON NANOPARTICLES

IF 0.6 Q4 ENGINEERING, MECHANICAL MM Science Journal Pub Date : 2023-11-15 DOI:10.17973/mmsj.2023_11_2023005
MIROSLAVA FLIMELOVA, YURY V. RYABCHIKOV
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Abstract

The design of semiconductor-metallic nanostructures using pulsed laser ablation in liquids (PLAL) is a very demanding task for biomedical applications being at an early stage of its development. Only few recent papers show the possibility of such a synthesis of composite nanoparticles as well as their perspectives for biosensing applications. However, mechanisms of the laser-stimulated formation of semiconductor-metallic nanoparticles involving several processes are not clarified yet being considerably depended on experimental conditions. In this work, we demonstrated an impact of the laser irradiation of colloidal solutions of silicon nanoparticles at different exposure time in the presence/absence of a gold target. In particular, longer ablation of the metal led to a stronger plasmonic maximum in silicon nanoparticles at around 520 nm. It also decreased the hydrodynamic size from 165 nm to 85 nm as well as the ξ-potential from –46 mV to –30 mV by increasing the ablation time from 0 s to 600 s. At the same time, the lowest electrical conductivity value (~1.5 µS/cm) of the plasmonic nanocomposites was detected at 120 s irradiation time. The highest concentration of synthesized composite nanoparticles (~3·1011 NPs/mL) was achieved at 180 s ablation time. Another purpose of the paper was to reveal an influence of the used laser irradiation on properties of the colloidal solutions of silicon nanoparticles themselves. It was found a considerable decrease of their absorbance with the increase of the laser exposure time that can be associated with the change of their properties (e.g. concentration, size, oxidation state etc.). Thus, the laser irradiation strongly affects properties of colloidal solutions of silicon nanoparticles that must also be taken into account considering possible mechanisms of the formation of composite nanostructures. Presented in the paper fast optical diagnostic can help to determine properties of colloidal solutions of nanocomposites formed by PLAL prior their biomedical or catalytic applications.
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激光照射时间对纳米硅胶体溶液性能的影响
利用脉冲激光在液体中烧蚀(PLAL)来设计半导体金属纳米结构是一项非常艰巨的任务,因为它还处于生物医学应用的早期发展阶段。只有最近的几篇论文显示了这种复合纳米颗粒合成的可能性以及它们在生物传感应用方面的前景。然而,激光刺激形成半导体金属纳米粒子的机制涉及几个过程尚未明确,但在很大程度上取决于实验条件。在这项工作中,我们展示了在存在/不存在金靶的情况下,激光照射不同曝光时间的硅纳米粒子胶体溶液的影响。特别是,金属的长时间烧蚀导致硅纳米颗粒在520 nm左右产生更强的等离子体激元最大值。通过将烧蚀时间从0 s增加到600 s,将水动力尺寸从165 nm减小到85 nm,并将ξ电位从-46 mV减小到-30 mV。同时,在120s辐照时间下,检测到等离子体纳米复合材料的最低电导率值(~1.5µS/cm)。在烧蚀时间为180 s时,合成的复合纳米颗粒浓度达到最高(~3·1011 NPs/mL)。本文的另一个目的是揭示所使用的激光照射对硅纳米颗粒胶体溶液本身性质的影响。随着激光照射时间的增加,它们的吸光度显著降低,这可能与它们的性质(如浓度、尺寸、氧化态等)的变化有关。因此,激光照射强烈影响硅纳米粒子胶体溶液的性质,这也必须考虑到复合纳米结构形成的可能机制。本文介绍了快速光学诊断可以帮助确定由PLAL形成的纳米复合材料的胶体溶液在生物医学或催化应用之前的性质。
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MM Science Journal
MM Science Journal ENGINEERING, MECHANICAL-
CiteScore
1.30
自引率
42.90%
发文量
96
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