论文标题
支持超级腔模式的单个亚波长粒子中的激光动作
Lasing action in single subwavelength particles supporting supercavity modes
论文作者
论文摘要
片上光源对于实现完全集成的光子电路至关重要。到目前为止,半导体微型激光器主要限于几微米的尺寸。由于相关的辐射损失,大小的进一步降低根本上是具有挑战性的。尽管使用等离子金属有助于减少辐射损失和尺寸,但它们还引入了阻碍实际改进的欧姆损失。在这项工作中,我们表明,利用连续性或超级腔模式中的准结合状态,我们避免了这些基本问题,并实现了迄今为止最小的纯半导体纳米剂。在这里,纳米层结构基于单个半导体纳米级,该纳米级有意利用两种受支持的光学模式(即Fabry-Perot和MIE模式)之间的破坏性干扰,从而在该腔的质量因素上获得了显着的增强。我们在实验中证明了该概念,并在低温温度下使用GAAS获得了光学泵送的激光作用。最佳纳米级尺寸的直径为500 nm,高度仅为330 nm,激光波长约为825 nm,对应于0.6左右的尺寸与波长比率。获得的结果为开发较小的片上光源的开发铺平了道路,而没有欧姆损失,这可能会在未来的光子电路中找到应用。
On-chip light sources are critical for the realization of fully integrated photonic circuitry. So far, semiconductor miniaturized lasers have been mainly limited to sizes on the order of a few microns. Further reduction of sizes is challenging fundamentally due to the associated radiative losses. While using plasmonic metals helps to reduce radiative losses and sizes, they also introduce Ohmic losses hindering real improvements. In this work, we show that, making use of quasi-bound states in the continuum, or supercavity modes, we circumvent these fundamental issues and realize the smallest purely semiconductor nanolaser thus far. Here, the nanolaser structure is based on a single semiconductor nanocylinder that intentionally takes advantage of the destructive interference between two supported optical modes, namely Fabry-Perot and Mie modes, to obtain a significant enhancement in the quality factor of the cavity. We experimentally demonstrate the concept and obtain optically pumped lasing action using GaAs at cryogenic temperatures. The optimal nanocylinder size is as small as 500 nm in diameter and only 330 nm in height with a lasing wavelength around 825 nm, corresponding to a size-to-wavelength ratio around 0.6. The obtained results pave the way for the development of smaller on-chip light sources free of Ohmic losses, which may find applications in the future photonic circuits.