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Continuous flow-based laser-assisted plasmonic heating: A new approach for photothermal energy conversion and utilization

机译:基于连续的流动激光辅助等离子体加热:一种新的光热能量转换和利用方法

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The aim of this study is to enhance our understanding on photothermal performance of plasmonic Au/TiO2 nanoparticles by conducting a well-controlled experiment under continuous flow conditions. Herein, plasmonic heating experiments of Au nanoparticles decorated on TiO2 nanoparticles were performed using 532 nm laser irradiation. Different parameters, such as Au loading, concentration of nanoparticles, flow rate and laser intensity that could affect the optical and photothermal properties of the nanofluids were studied. The results revealed that the photothermal performance of the nanofluids was remarkably increased in the presence of Au. Particularly, Au nanofluid exhibits a significant higher temperature achieving up to 32 degrees C compared to that of TiO2 nanofluid (22.5 degrees C) and water-based fluid (20.5 degrees C) which is attributed to the localized surface plasmon resonance effect on the surface of Au nanoparticles. The concept of continuous-flow based plasmonic heating of Au/TiO2 nanofluid, with considerable optical and thermal properties, is a promising approach in efficient photothermal applications such as thermal energy supply in industrial chemical processes.
机译:本研究的目的是通过在连续流动条件下进行良好控制的实验,提高我们对等离子体Au / TiO2纳米颗粒的光热性能的理解。这里,使用532nm激光照射进行在TiO2纳米颗粒上装饰的Au纳米颗粒的等离子体加热实验。研究了不同的参数,例如Au Loading,纳米颗粒的浓度,可能影响纳米流体的光学和光热学性质的流速和激光强度。结果表明,在Au的存在下,纳米流体的光热性能显着增加。特别地,与TiO2纳米流体(22.5℃)和水基流体(20.5℃)相比,Au nanofluid呈现出高达32℃的显着较高温度,其归因于局部表面等离子体谐振效应Au纳米粒子。具有相当大的光学和热性能的Au / TiO2纳米流体的连续流动等离子体加热的概念,是高效的光热应用的有希望的方法,例如工业化学过程的热能供应。

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