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回音壁模式光学微腔的数值表征

Numerical characterization of whispering-gallery mode optical microcavities.

作者信息

Guo Zhixiong, Quan Haiyong, Pau Stanley

机构信息

Department of Mechanical and Aerospace Engineering, Rutgers, the State University of New Jersey, Piscataway, New Jersey 08854, USA.

出版信息

Appl Opt. 2006 Feb 1;45(4):611-8. doi: 10.1364/ao.45.000611.

Abstract

We characterize planar microcavities in whispering-gallery mode optical resonances. The microcavity consists of a waveguide and a microdisk, and a nanoscale gap separates the waveguide and the microdisk. The devices can be fabricated on Si-based thin films by using conventional microelectronics techniques. To characterize these types of cavity, we study a broad range of resonator configuration parameters including the size of the microdisk, the width of the gap, and the waveguide dimensions. The finite-element method is used for solving Maxwell's equations. The electric fields and the energy density distributions are obtained and compared between the on-resonance and off-resonance situations. A brilliant ring with a strong electric field and a high-energy density is found inside the periphery of the microdisk under first-order resonance. While under second-order resonance, there are two bright rings, and the light intensity in the inner ring is stronger than that in the outer ring. The resonant frequencies and their free spectral ranges are predominantly determined by the size of the microdisk. The gap effect on the resonant frequencies is observable, although it is minor. The gap strongly affects the full width at half-maximum (FWHM), finesse, and quality factor of the resonances. With an increase in the gap width from 100 to 300 nm, both the Q value and finesse increase substantially, while the FWHM decreases. The waveguide width has a visible influence on the Q value, FWHM, and finesse as well.

摘要

我们对回音壁模式光学共振中的平面微腔进行了表征。该微腔由一个波导和一个微盘组成,波导和微盘之间有一个纳米级的间隙。这些器件可以通过使用传统微电子技术在硅基薄膜上制造。为了表征这类微腔,我们研究了广泛的谐振器配置参数,包括微盘的尺寸、间隙的宽度以及波导的尺寸。采用有限元方法求解麦克斯韦方程组。获得了共振和非共振情况下的电场和能量密度分布并进行了比较。在一阶共振下,在微盘的周边内部发现了一个具有强电场和高能量密度的亮环。而在二阶共振下,有两个亮环,内环的光强比外环的光强大。共振频率及其自由光谱范围主要由微盘的尺寸决定。间隙对共振频率的影响虽然较小但可以观察到。间隙强烈影响共振的半高宽(FWHM)、精细度和品质因数。随着间隙宽度从100纳米增加到300纳米,Q值和精细度都大幅增加,而FWHM减小。波导宽度对Q值、FWHM和精细度也有明显影响。

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