State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics and Engineering, Sun Yat-sen University, Guangzhou 510275, China.
Nanoscale Res Lett. 2013 Apr 23;8(1):187. doi: 10.1186/1556-276X-8-187.
The quality factor and mode volume of a nanocavity play pivotal roles in realizing the strong coupling interaction between the nanocavity mode and a quantum dot. We present an extremely simple method to obtain the mode volume and investigate the effect of the slab thickness on the quality factor and mode volume of photonic crystal slab nanocavities. We reveal that the mode volume is approximatively proportional to the slab thickness. As compared with the previous structure finely optimized by introducing displacement of the air holes, via tuning the slab thickness, the quality factor can be enhanced by about 22%, and the ratio between the coupling coefficient and the nanocavity decay rate can be enhanced by about 13%. This can remarkably enhance the capability of the photonic crystal slab nanocavity for realizing the strong coupling interaction. The slab thickness tuning approach is feasible and significant for the experimental fabrication of the solid-state nanocavities.
纳米腔的品质因数和模式体积在实现纳米腔模式与量子点之间的强耦合相互作用方面起着关键作用。我们提出了一种极其简单的方法来获得模式体积,并研究了平板厚度对光子晶体平板纳米腔的品质因数和模式体积的影响。我们揭示了模式体积与平板厚度近似成正比。与之前通过引入空气孔的位移来精细优化的结构相比,通过调节平板厚度,品质因数可以提高约 22%,并且耦合系数与纳米腔衰减率的比值可以提高约 13%。这可以显著提高光子晶体平板纳米腔实现强耦合相互作用的能力。平板厚度调节方法对于固态纳米腔的实验制造是可行和重要的。