论文标题
一维合成光子晶格中离散的光学动力学
Discretized optical dynamics in one-dimensionally synthetic photonic lattice
论文作者
论文摘要
具有时间控制电位的合成光子晶格是实现与光学和量子物理物理区域相关的波动力学的多功能平台。在这里,系统地研究了一维合成光子晶格中的离散光学,其中光行为与evansciplys耦合的一维离散波导中的光学行为高度相似。这种合成维度是由位置依赖性的周期性有效量规场构建的,该量规场是基于纤维环的相积聚而产生的Aharonov-bohm效应。通过调整耦合器的相位积累和耦合系数,可以调节频带翻译和间隙属性,从而进一步导致脉冲和量身定制的高斯波数据包响应以及Talbot复发。另外,当相位累积分别随机变化并弱调节时,也可以获得BLOCH振荡和Anderson定位。我们协议中的周期性有效量规场的配置使SPL可以成为一维动态调制元件甚至非富甲指导的研究平台。
Synthetic photonic lattice with temporally controlled potentials is a versatile platform for realizing wave dynamics associated with physical areas of optics and quantum physics. Here, discrete optics in one-dimensionally synthetic photonic lattice is investigated systematically, in which the light behavior is highly similar to those in evanescently coupled one-dimensional discrete waveguides. Such a synthetic dimension is constructed with position-dependent periodic effective gauge fields based on Aharonov-Bohm effect arising from the phase accumulations of the fiber loops. By tuning the phase accumulations and coupling coefficient of the coupler, the band translation and gap property can be modulated which further results in the impulse and tailored Gaussian wave packet responses as well as Talbot recurrences. In addition, Bloch oscillations and Anderson localization can also be obtained when the phase accumulations are linearly changed and weakly modulated in random, respectively. The periodic effective gauge fields configuration in our protocol enables SPL to be a research platform for one-dimensional dynamically modulated elements or even non-Hermitian waveguides.