Zhang Haoran, Wang Tao, Tian Jingyi, Sun Jiacheng, Li Shaoxian, De Leon Israel, Zaccaria Remo Proietti, Peng Liang, Gao Fei, Lin Xiao, Chen Hongsheng, Wang Gaofeng
Engineering Research Center of Smart Microsensors and Microsystems of MOE; and School of Electronics and Information, Hangzhou Dianzi University, Hangzhou, 310018, China.
Centre for Disruptive Photonic Technologies, TPI, SPMS, Nanyang Technological University, Nanyang, 637371, Singapore.
Nanophotonics. 2021 Dec 1;11(2):297-304. doi: 10.1515/nanoph-2021-0368. eCollection 2022 Jan.
In this work, we propose and numerically investigate a two-dimensional microlaser based on the concept of bound states in the continuum (BIC). The device consists of a thin gain layer (Rhodamine 6G dye-doped silica) sandwiched between two high-contrast-grating layers. The structure supports various BIC modes upon a proper choice of topological parameters; in particular it supports a high- quasi-BIC mode when partially breaking a bound state in the continuum at Γ point. The optically-pumped gain medium provides sufficient optical gain to compensate the quasi-BIC mode losses, enabling lasing with ultra-low pump threshold (fluence of 17 μJ/cm) and very narrow optical linewidth in the visible range. This innovative device displays distinguished sensing performance for gas detection, and the emission wavelength sensitively shifts to the longer wavelength with the changing of environment refractive index (in order of 5 × 10). The achieved bulk sensitivity is 221 nm/RIU with a high signal to noise ratio, and a record-high figure of merit reaches to 4420 RIU. This ultracompact and low threshold quasi-BIC laser facilitated by the ultra-narrow resonance can serve as formidable candidate for on-chip gas sensor.
在这项工作中,我们基于连续统中的束缚态(BIC)概念提出并对二维微激光器进行了数值研究。该器件由夹在两个高对比度光栅层之间的薄增益层(罗丹明6G染料掺杂二氧化硅)组成。通过适当选择拓扑参数,该结构支持各种BIC模式;特别是当在Γ点部分打破连续统中的束缚态时,它支持一种高准BIC模式。光泵浦增益介质提供足够的光学增益以补偿准BIC模式损耗,从而能够以超低泵浦阈值(通量为17 μJ/cm)在可见光范围内实现具有非常窄的光学线宽的激光发射。这种创新器件在气体检测方面表现出卓越的传感性能,并且随着环境折射率的变化(约为5×10),发射波长灵敏地向更长波长移动。所实现的体灵敏度为221 nm/RIU,具有高信噪比,品质因数达到创纪录的4420 RIU。这种由超窄共振促进的超紧凑且低阈值的准BIC激光器可作为片上气体传感器的有力候选者。