Mirzapourbeinekalaye Babak, Samudrala Sarath, Mansouree Mahdad, McClung Andrew, Arbabi Amir
Department of Electrical and Computer Engineering, University of Massachusetts Amherst, 151 Holdsworth Way, Amherst, MA 01003, USA.
Nanophotonics. 2022 Apr 20;11(12):2901-2908. doi: 10.1515/nanoph-2022-0106. eCollection 2022 Jun.
Optical microresonators with low quality factor ( ) can be efficiently excited by and scatter freely propagating optical waves, but those with high typically cannot. Here, we present a universal model for resonators interacting with freely propagating waves and show that the stored energy of a resonator excited by a plane wave is proportional to the product of its and directivity. Guided by this result, we devise a microdisk with periodic protrusions in its circumference that couples efficiently to normally incident plane waves. We experimentally demonstrate several microdisk designs, including one with a radius of 0.75 and of 15,000. Our observation of thermally-induced bistability in this resonator at input powers as low as 0.7 mW confirms strong excitation. Their small footprints and mode volumes and the simplicity of their excitation and fabrication make wavelength-scale, free-space-coupled microdisks attractive for sensing, enhancing emission and nonlinearity, and as micro-laser cavities.
低品质因数( )的光学微谐振器能够被自由传播的光波高效激发并自由散射,但高品质因数的微谐振器通常无法做到。在此,我们提出了一个用于谐振器与自由传播波相互作用的通用模型,并表明由平面波激发的谐振器的存储能量与其品质因数和方向性的乘积成正比。基于这一结果,我们设计了一种在其圆周上具有周期性凸起的微盘,该微盘能有效地耦合到垂直入射的平面波。我们通过实验展示了几种微盘设计,包括一种半径为0.75 且品质因数为15,000的微盘。我们在该谐振器中观察到在低至0.7 mW的输入功率下的热致双稳性,证实了其受到了强烈激发。它们小的占地面积和模式体积以及激发和制造的简单性,使得波长尺度的、自由空间耦合的微盘对于传感、增强发射和非线性以及作为微激光腔具有吸引力。