论文标题
在linbo $ \ mathrm {_3} $ metaSurface中,由高Q引导共鸣和绑定状态在连续体中升级的第二谐波一代
Boosted second-harmonic generation in the LiNbO$\mathrm{_3}$ metasurface governed by high-Q guided resonances and bound states in the continuum
论文作者
论文摘要
迄今为止,纳米级的第二次谐波生成(SHG)集中在使用高反射索引纳米结构上,这是由于基于光学共振效应的深度亚波长尺度上的强场限制。但是,低索引纳米结构通常表现出较弱的谐振作用和较低的场限制。为了解决这个问题,通过利用Linbo $ \ Mathrm {_3} $的巨大非线性,我们提出了一种新颖的方法,以使用Linbo $ \ Mathrm {_3} $ MetAsurface在linbo $ \ mathrm permbo3 $ \ tinbo 3} $ linaw y line the Continuum(BICS)中采用有指导的共振和绑定状态(BICS)。这样的系统可以将linbo $ \ mathrm {_3} $薄膜支撑的指导模式转化为高质量的引导共振,这些共振可以直接在平面波照明下激发。重要的是,我们通过实现Friedrich-Wintgen BIC,进一步证明了Linbo3薄膜内部的强场限制。这样的独特模式工程使得在泵强度低至0.4 $ \ mathrm {mw/cm^{2}} $的泵强度下,创纪录的SHG效率为5 \%。此外,我们通过显示异常的SHG和效率调节,揭示了非线性共振和交叉耦合对SHG的影响。我们的工作为基于高Q引导的共振和BIC(包括低索引和高指数非线性材料)构建增强的SHG提供了新的途径。
To date, second-harmonic generation (SHG) at nanoscale has been concentrated on employing high-refractive-index nanostructures, owing to the strong field confinement at deep subwavelength scales based on optically resonant effects. However, low-index nanostructures generally exhibit weaker resonant effects and lower field confinement. To address this issue, by harnessing the large nonlinearity of LiNbO$\mathrm{_3}$, we propose a novel approach to employ guided resonances and bound states in the continuum (BICs) with a LiNbO$\mathrm{_3}$ metasurface consisting of a LiNbO$\mathrm{_3}$ disk array sitting on a LiNbO3 thin film. Such a system can transform the guided modes supported by LiNbO$\mathrm{_3}$ thin film into high-quality guided resonances which can be excited directly under plane-wave illumination. Importantly, we further demonstrate strong field confinement inside LiNbO3 thin film with tailorable Q-factor by realising a Friedrich-Wintgen BIC. Such a unique mode engineering enables a record-high SHG efficiency of 5\% under a pump intensity as low as 0.4 $\mathrm{MW/cm^{2}}$. Moreover, we reveal the influence of nonlinear resonances and cross-coupling on the SHG by showing the anomalous SHG and efficiency tuning with the rotation of the crystal axis. Our work offers a new route to constructing enhanced SHG based on high-Q guided resonances and BICs, including low-index and high-index nonlinear materials.