Xiong Xiao, Wu Lin, Bai Ping, Png Ching Eng, Ong Jun Rong, Krivitsky Leonid
Opt Lett. 2021 Jan 15;46(2):242-245. doi: 10.1364/OL.412115.
Optical frequency conversion in semiconductor nanophotonic devices usually imposes stringent requirements on fabrication accuracy and etch surface roughness. Here, we adopt the concept of bound-state-in-continuum (BIC) for waveguide frequency converter design, which obviates the limitations in nonlinear material nano-fabrication and requires to pattern only a low-refractive-index strip on the nonlinear slab. Taking gallium phosphide (GaP) as an example, we study second-harmonic generation using horizontally polarized pump light at 1.55 µm phase matching to vertically polarized BIC modes. A theoretical normalized frequency conversion efficiency of 1.1×10 is obtained using the fundamental BIC mode, which is comparable to that of conventional GaP waveguides.
半导体纳米光子器件中的光频率转换通常对制造精度和蚀刻表面粗糙度提出了严格要求。在此,我们采用连续统中的束缚态(BIC)概念来设计波导频率转换器,这消除了非线性材料纳米制造中的限制,并且仅需要在非线性平板上对低折射率条带进行图案化。以磷化镓(GaP)为例,我们研究了使用1.55μm水平偏振泵浦光与垂直偏振BIC模式进行相位匹配的二次谐波产生。使用基本BIC模式获得的理论归一化频率转换效率为1.1×10 ,这与传统GaP波导的效率相当。