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三维金纳米结构的光热转换与拉曼传感特性

Photo-Thermal Conversion and Raman Sensing Properties of Three-Dimensional Gold Nanostructure.

作者信息

Shan Feng, Huang Jingyi, Zhu Yanyan, Wei Guohao

机构信息

Department of Mathematics and Physics, Luoyang Institute of Science and Technology, Luoyang 471023, China.

Henan Key Laboratory of Green Building Materials Manufacturing and Intelligent Equipment, Luoyang Institute of Science and Technology, Luoyang 471023, China.

出版信息

Molecules. 2024 Sep 10;29(18):4287. doi: 10.3390/molecules29184287.

Abstract

Three-dimensional plasma nanostructures with high light-thermal conversion efficiency show the prospect of industrialization in various fields and have become a research hotspot in areas of light-heat utilization, solar energy capture, and so on. In this paper, a simple chemical synthesis method is proposed to prepare gold nanoparticles, and the electrophoretic deposition method is used to assemble large-area three-dimensional gold nanostructures (3D-GNSs). The light-thermal water evaporation monitoring and surface-enhanced Raman scattering (SERS) measurements of 3D-GNSs were performed via theoretical simulation and experiments. We reveal the physical processes of local electric field optical enhancement and the light-thermal conversion of 3D-GNSs. The results show that with the help of the efficient optical trapping and super-hydrophilic surface properties of 3D-GNSs, they have a significant effect in accelerating water evaporation, which was increased by nearly eight times. At the same time, the three-dimensional SERS substrates based on gold nanosphere particles (GNSPs) and gold nanostar particles (GNSTs) had limited sensitivities of 10 M and 10 M to R6G molecules, respectively. Therefore, 3D-GNSs show strong competitiveness in the fields of solar-energy-induced water purification and the Raman trace detection of organic molecules.

摘要

具有高光热转换效率的三维等离子体纳米结构在各个领域展现出产业化前景,已成为光热利用、太阳能捕获等领域的研究热点。本文提出一种简单的化学合成方法来制备金纳米颗粒,并采用电泳沉积法组装大面积三维金纳米结构(3D-GNSs)。通过理论模拟和实验对3D-GNSs进行了光热水蒸发监测和表面增强拉曼散射(SERS)测量。我们揭示了3D-GNSs的局部电场光学增强和光热转换的物理过程。结果表明,借助3D-GNSs高效的光捕获和超亲水表面特性,它们在加速水蒸发方面具有显著效果,水蒸发速率提高了近八倍。同时,基于金纳米球颗粒(GNSPs)和金纳米星颗粒(GNSTs)的三维SERS基底对R6G分子的灵敏度分别有限,为10 M和10 M。因此,3D-GNSs在太阳能诱导水净化和有机分子拉曼痕量检测领域展现出强大的竞争力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6916/11433790/cd136e7d73dd/molecules-29-04287-g001.jpg

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