Sasanpour Pezhman, Shahmansouri Afsaneh, Rashidian Bizhan
Institute for Nanoscience and Nanotechnology, Sharif University of Technology, Tehran, Iran.
J Nanosci Nanotechnol. 2010 Nov;10(11):7179-82. doi: 10.1166/jnn.2010.2903.
Third order nonlinear effects and its enhancement in gold nanostructures has been numerically studied. Analysis method is based on computationally solving nonlinear Maxwell's equations, considering dispersion behavior of permittivity described by Drude model and third order nonlinear susceptibility. Simulation is done by method of nonlinear finite difference time domain method, in which nonlinear equations of electric field are solved by Newton-Raphshon method. As the main outcomes of third order nonlinear susceptibility, four wave mixing and third harmonic generation terms are produced around gold nanostructures. Results of analysis on different geometries and structures show that third order nonlinearity products are more enhanced in places where electric field enhancement is occurred due to surface plasmons. Results indicates that enhancement of nonlinearities is strongly occurred in structures whose interface is dielectric. According to analysis results, nonlinear effects are highly concentrated in the vicinity of nanostructures. Hence this approach can be used in applications where localized ultraviolet light is required.
对金纳米结构中的三阶非线性效应及其增强进行了数值研究。分析方法基于对非线性麦克斯韦方程组的计算求解,考虑了德鲁德模型描述的介电常数色散行为和三阶非线性极化率。模拟采用非线性有限差分时域法进行,其中电场的非线性方程通过牛顿 - 拉夫逊法求解。作为三阶非线性极化率的主要结果,在金纳米结构周围产生了四波混频和三次谐波产生项。对不同几何形状和结构的分析结果表明,由于表面等离子体导致电场增强的地方,三阶非线性产物增强得更多。结果表明,在界面为电介质的结构中强烈发生非线性增强。根据分析结果,非线性效应高度集中在纳米结构附近。因此,这种方法可用于需要局部紫外光的应用中。