Department of Optical Science and Technology, The University of Tokushima, Tokushima 770-8506, Japan.
Langmuir. 2013 Jan 29;29(4):1295-302. doi: 10.1021/la3046143. Epub 2013 Jan 9.
The laser-induced size reduction of aqueous noble metal nanoparticles has been the subject of intensive research, because of the mechanistic interest in the light-nanoparticle interactions and its potential application to size control. The photothermal evaporation hypothesis has gained solid support. However, the polydispersity of the final products is considered as an inherent drawback of the method. It is likely that the polydispersity arises from the uncontrolled heat dissipation caused by vapor bubble formation in the ambient atmosphere. To overcome this problem, we applied high pressures of 30-100 MPa. The particle size was regulated by adjusting three parameters: the pressure, laser intensity, and excitation wavelength. For example, starting from a colloidal solution of 100 nm diameter gold nanoparticles, highly monodisperse (±3-5%) spheres with various diameters ranging from 90 to 30 nm were fabricated by tuning the laser intensity at 100 MPa, using an excitation wavelength of 532 nm. Further size reduction of the diameter to 20 nm was achieved by reducing the pressure and switching the excitation wavelength to 355 nm. It was found that the application of high pressures led to the heat loss-controlled size-reduction of the gold nanoparticles. More complicated results were obtained for 100 nm silver nanoparticles, possibly because of the different size-dependent light-absorbing nature of these particles. Based on our extensive experimental studies, a detailed picture was developed for the nanosecond laser-induced fabrication of gold and silver nanoparticles, leading to unprecedented size control.
激光诱导水相贵金属纳米颗粒的尺寸减小一直是研究的热点,因为这涉及到光与纳米颗粒相互作用的机制研究以及其在尺寸控制方面的潜在应用。光热蒸发假说得到了有力的支持。然而,最终产物的多分散性被认为是该方法的固有缺点。很可能是由于在环境气氛中形成蒸汽泡导致的不可控热耗散引起了多分散性。为了解决这个问题,我们施加了 30-100 MPa 的高压。通过调整三个参数来调节颗粒尺寸:压力、激光强度和激发波长。例如,从直径为 100nm 的胶体金纳米粒子溶液开始,通过在 100 MPa 下调节激光强度,使用 532nm 的激发波长,制备出具有各种直径(90-30nm)的高度单分散(±3-5%)球体。通过降低压力并将激发波长切换到 355nm,可以进一步将直径减小到 20nm。结果发现,施加高压导致金纳米颗粒的尺寸减小受到热损失控制。对于 100nm 银纳米粒子,得到了更复杂的结果,这可能是由于这些粒子的尺寸依赖性光吸收性质不同。基于我们广泛的实验研究,我们为纳秒激光诱导金和银纳米粒子的制备提出了一个详细的方案,实现了前所未有的尺寸控制。