Tian Xiangling, Wei Rongfei, Yang Dandan, Qiu Jianrong
State Key Laboratory of Luminescent Materials and Devices, Institute of Optical Communication Materials, School of Materials Science and Engineering, South China University of Technology Wushan Road 381 Guangzhou 510641 PR China
Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University 21 Nanyang Link Singapore 637371 Singapore.
Nanoscale Adv. 2020 Feb 25;2(4):1676-1684. doi: 10.1039/c9na00694j. eCollection 2020 Apr 15.
In heavily doped semiconductor nanocrystal systems, high-order nonlinearities including third-order nonlinearity and fifth-order nonlinearity can be tailored to manipulate light on the nanoscale due to the semiconductor intrinsic absorption and localized surface plasmon resonances. Here, by exploiting the nonlinear optical properties of broadly infrared plasmons in solution-processed aluminum-doped ZnO nanocrystals (AZO NCs) with a wide band-gap, we demonstrate that the competition between plasma ground-state bleaching (third-order nonlinearity) and three-photon absorption (fifth-order nonlinearity) is responsible for the transition between saturable absorption and reverse saturable absorption. Upon increasing the pump intensity, the third-order nonlinear coefficient decreases from -5.85 × 10 cm GW to -7.89 × 10 cm GW, while the fifth-order nonlinear coefficient increases from 3.08 × 10 cm GW to 15.8 cm GW. With aluminum-doped ZnO nanocrystals as a Q-switch, a pulsed fiber laser operating at the C band (optical communication band) was constructed. Furthermore, the relatively small temperature fluctuations (7.13 K) of the Q-switch indicate its application prospects in all-optical systems. Investigations on the intrinsic mechanism between high-order nonlinearity and the nonlinear absorption can promote the further development and applications of heavily doped oxide semiconductors in advanced nanophotonics.
在重掺杂半导体纳米晶体系统中,由于半导体的本征吸收和局域表面等离子体共振,包括三阶非线性和五阶非线性在内的高阶非线性可以被调控,从而在纳米尺度上操纵光。在此,通过利用具有宽带隙的溶液法制备的铝掺杂氧化锌纳米晶体(AZO NCs)中宽红外等离子体的非线性光学特性,我们证明了等离子体基态漂白(三阶非线性)和三光子吸收(五阶非线性)之间的竞争导致了饱和吸收和反饱和吸收之间的转变。随着泵浦强度的增加,三阶非线性系数从 -5.85×10 cm GW 降至 -7.89×10 cm GW,而五阶非线性系数从 3.08×10 cm GW 增至 15.8 cm GW。以铝掺杂氧化锌纳米晶体作为调Q开关,构建了一台在C波段(光通信波段)工作的脉冲光纤激光器。此外,调Q开关相对较小的温度波动(7.13 K)表明了其在全光系统中的应用前景。对高阶非线性与非线性吸收之间内在机制的研究能够推动重掺杂氧化物半导体在先进纳米光子学中的进一步发展和应用。