受纳米散射扰动的耦合谐振器中的高手性异常点。

IF 1.4 3区 物理与天体物理 Q3 OPTICS
Shahab Ramezanpour
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引用次数: 0

摘要

通过在光学系统中使用强手性,可以控制光的传播方向并检测亚波长粒子。在这里,我们证明了在受纳米散射体扰动的耦合谐振器中可以出现一种具有高(空间)手性的不同类型的手性异常点(EP),其中散射体的距离和位置都可以调谐。在两种情况下,我们在谐振器之间的两个不同距离上实现了强手性EP,手性都在0.99左右。此外,还实现了与高次谐波窃窃廊模式相关的手性EP,手性在0.95左右。我们还研究了具有相同和不同光自旋的粒子之间的相互作用,这可以模拟量子力学中电子的自旋向上和自旋向下。该器件提供了一种可调方案,通过加入一个或多个纳米散射体来实现不同腔模式的高方向性。同时结合多种可调谐机制,如纳米散射、非线性和时间调制,在制造和噪声环境中存在不必要的缺陷时,可能会超越传统的手性和灵敏度限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Highly chiral exceptional point in coupled resonators perturbed by nanoscatterers.

With employing strong chirality in an optical system, the direction of light propagation can be controlled and subwavelength particles can be detected. Here, we show that a different kind of chiral exceptional point (EP) with high (spatial) chirality can appear in a coupled resonator perturbed by nanoscatterers, in which both the distance and position of the scatterers can be tuned. We achieve strong chiral EP in two different distances between the resonators, with chirality around 0.99, in both cases. Besides, chiral EP associated with the higher harmonic whispering gallery mode is achieved, with chirality around 0.95. We also investigate the interaction of particles with same and different spin of light, which can mimic the spin-up and spin-down of electrons in quantum mechanics. The proposed device provides a tunable scheme to achieve high directionality of different cavity modes by incorporating one or more nanoscatterers. With incorporating more than one tunable mechanism such as nanoscatterers, nonlinearity, and time-modulation, simultaneously, the conventional limitations in chirality and sensitivity may be surpassed in the presence of unwanted imperfections of fabrication and noisy environment.

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来源期刊
CiteScore
3.40
自引率
10.50%
发文量
417
审稿时长
3 months
期刊介绍: The Journal of the Optical Society of America A (JOSA A) is devoted to developments in any field of classical optics, image science, and vision. JOSA A includes original peer-reviewed papers on such topics as: * Atmospheric optics * Clinical vision * Coherence and Statistical Optics * Color * Diffraction and gratings * Image processing * Machine vision * Physiological optics * Polarization * Scattering * Signal processing * Thin films * Visual optics Also: j opt soc am a.
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