School of Physics, State Key Laboratory of Crystal Materials and Key Laboratory of Particle Physics and Particle Irradiation (MOE), Shandong University, Jinan 250100, P. R. China.
Nanoscale. 2018 Mar 1;10(9):4228-4236. doi: 10.1039/c7nr07304f.
We report on the synthesis of embedded gold (Au) nanoparticles (NPs) in Nd:YAG single crystals using ion implantation and subsequent thermal annealing. Both linear and nonlinear absorption of the Nd:YAG crystals have been enhanced significantly due to the embedded Au NPs, which is induced by the surface plasmon resonance (SPR) effect in the visible light wavelength band. Particularly, through a typical Z-scan system excited by a femtosecond laser at 515 nm within the SPR band, the nonlinear absorption coefficients of crystals with Au NPs have been observed to be nearly 5 orders of magnitude larger than that without Au NPs. This giant enhancement of nonlinear absorption properties is correlated with the saturable absorption (SA) effect, which is the basis of passive Q-switching or mode-locking for pulsed laser generation. In addition, the linear and nonlinear absorption enhancement could be tailored by varying the fluence of implanted Au ions, corresponding to the NP size and concentration modulation. Finally, the Nd:YAG wafer with embedded Au NPs has been applied as a saturable absorber in a Pr:LuLiF crystal laser cavity, and efficient pulsed laser generation at 639 nm has been realized, which presents superior performance to the MoS saturable absorber based system. This work opens an avenue to enhance and modulate the nonlinearities of dielectrics by embedding plasmonic Au NPs for efficient pulsed laser operation.
我们报告了使用离子注入和后续热退火在 Nd:YAG 单晶体中合成嵌入式金(Au)纳米颗粒(NPs)。由于嵌入式 Au NPs 引起的表面等离子体共振(SPR)效应,Nd:YAG 晶体的线性和非线性吸收都得到了显著增强,该效应在可见光波段发生。特别是,通过在 SPR 带内 515nm 的飞秒激光激发的典型 Z 扫描系统,观察到具有 Au NPs 的晶体的非线性吸收系数几乎比没有 Au NPs 的晶体大 5 个数量级。这种非线性吸收特性的巨大增强与饱和吸收(SA)效应相关,这是被动调 Q 或锁模产生脉冲激光的基础。此外,通过改变注入的 Au 离子的通量,可以对线性和非线性吸收增强进行调整,这对应于 NP 尺寸和浓度的调制。最后,已经将具有嵌入式 Au NPs 的 Nd:YAG 晶片应用于 Pr:LuLiF 晶体激光腔中作为可饱和吸收体,并实现了在 639nm 处的高效脉冲激光产生,其性能优于基于 MoS 可饱和吸收体的系统。这项工作为通过嵌入等离子体 Au NPs 来增强和调制电介质的非线性以实现高效脉冲激光操作开辟了一条途径。