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Understanding the photothermal conversion efficiency of gold nanocrystals

机译:了解金纳米晶体的光热转换效率

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Plasmon-based photothermal therapy is one of the most intriguing applications of noble metal nanostructures. The photothermal conversion efficiency is an essential parameter in practically realizing this application. The effects of the plasmon resonance wavelength, particle volume, shell coating, and assembly on the photothermal conversion efficiencies of Au nanocrystals are systematically studied by directly measuring the temperature of Au nanocrystal solutions with a thermocouple and analyzed on the basis of energy balance. The temperature of Au nanocrystal solutions reaches the maximum at ~ 75°C when the plasmon resonance wavelength of Au nanocrystals is equal to the illumination laser wavelength. For Au nanocrystals with similar shapes, the larger the nanocrystal, the smaller the photothermal conversion efficiency becomes. The photothermal conversion can also be controlled by shell coating and assembly through the change in the plasmon resonance energy of Au nanocrystals. Moreover, coating Au nanocrystals with semiconductor materials that have band gap energies smaller than the illumination laser energy can improve the photothermal conversion efficiency owing to the presence of an additional light absorption channel.
机译:基于等离子体的光热疗法是贵金属纳米结构最引人入胜的应用之一。在实际实现该应用中,光热转换效率是必不可少的参数。通过利用热电偶直接测量Au纳米晶体溶液的温度,并在能量平衡的基础上进行分析,系统地研究了等离振子共振波长,颗粒体积,壳涂层和组装对Au纳米晶体光热转换效率的影响,并进行了分析。当Au纳米晶体的等离振子共振波长等于照射激光波长时,Au纳米晶体溶液的温度在〜75℃达到最高。对于具有相似形状的Au纳米晶体,纳米晶体越大,光热转换效率变得越小。光热转化还可以通过壳包衣和组装来控制,方法是改变Au纳米晶体的等离子体共振能。此外,由于存在附加的光吸收通道,用具有比照明激光能量小的带隙能量的半导体材料涂覆Au纳米晶体可以提高光热转换效率。

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