Wang Shuangshuang, Ding Tao
Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education of China, School of Physics and Technology , Wuhan University , Wuhan 430072 , China.
ACS Nano. 2019 Jan 22;13(1):32-37. doi: 10.1021/acsnano.8b06087. Epub 2018 Nov 7.
The synergy of photothermal energy and optical forces generated by tightly focused laser beams can be used to transform the shape of gold nanoparticles. Here, the combination of these two effects is demonstrated to be an effective way of elongating gold nanoparticles (Au NPs), massively tuning their plasmonic properties. The photothermal effect of the laser increases the temperature of Au NPs above the melting point, and optical forces deform the molten Au NPs. As a result, the shape of Au NPs transforms from nanospheres into nanorods or dimers, depending on the power and time of irradiation as well as the surface energy of the substrate. This process is reversible by using high laser power to transform nanorods back to nanospheres due to capillary dewetting. Such light-induced transformations of nanostructures not only provide a facile way to tune plasmon resonances but also shed light on how the synergistic effect of photothermal energy and optical forces works on plasmonic nanoparticles.
由紧密聚焦的激光束产生的光热能与光力的协同作用可用于改变金纳米颗粒的形状。在此,这两种效应的结合被证明是延长金纳米颗粒(Au NPs)、大规模调节其等离子体特性的有效方法。激光的光热效应将Au NPs的温度升高到熔点以上,光力使熔化的Au NPs变形。结果,Au NPs的形状从纳米球转变为纳米棒或二聚体,这取决于照射的功率和时间以及基底的表面能。由于毛细管去湿,通过使用高激光功率将纳米棒变回纳米球,这个过程是可逆的。这种光诱导的纳米结构转变不仅提供了一种调节等离子体共振的简便方法,还揭示了光热能与光力的协同效应如何作用于等离子体纳米颗粒。