论文标题
在弯曲光子晶格上动态定位的实验量子模拟
Experimental Quantum Simulation of Dynamic Localization on Curved Photonic Lattices
论文作者
论文摘要
动态定位源自在外部应用的AC电场下粒子进化抑制的现象,已通过定期弯曲的光子阵列中的光演化进行了模拟。然而,关于其定量动态运输特性和量子信息处理应用的实验研究很少。在这里,我们构建了一维和六角二维阵列,均具有正弦曲率。我们成功地观察了被抑制的单光子演化模式,并首次测量了研究其运输特性的方差。对于一维阵列,测得的差异既符合分析电场计算和量子步行汉密尔顿工程方法。对于六边形阵列,作为四个方向的各向异性有效耦合是相互依赖的,分析方法会受到损害,而量子步行则方便地合并了汉密尔顿的所有各向异性耦合系数,并在整体上求解其指数,并与我们的实验结果产生一致的差异。此外,我们实施了一个几乎完整的本地化,以表明它可以在进化后同时保留初始注入和波包,并充当集成光子学中灵活的时间尺度的记忆。我们证明了用于研究其各向异性传输特性的动态定位的有用的量子模拟,并有希望将动态定位作为集成光子学中量子信息处理的基础。
Dynamic localization, which originates from the phenomena of particle evolution suppression under an externally applied AC electric field, has been simulated by suppressed light evolution in periodically-curved photonic arrays. However, experimental studies on their quantitative dynamic transport properties and application for quantum information processing are rare. Here we fabricate one-dimensional and hexagonal two-dimensional arrays, both with sinusoidal curvature. We successfully observe the suppressed single-photon evolution patterns, and for the first time measure the variances to study their transport properties. For one-dimensional arrays, the measured variances match both the analytical electric field calculation and the quantum walk Hamiltonian engineering approach. For hexagonal arrays, as anisotropic effective couplings in four directions are mutually dependent, the analytical approach suffers, while quantum walk conveniently incorporates all anisotropic coupling coefficients in the Hamiltonian and solves its exponential as a whole, yielding consistent variances with our experimental results. Furthermore, we implement a nearly complete localization to show that it can preserve both the initial injection and the wave-packet after some evolution, acting as a memory of a flexible time scale in integrated photonics. We demonstrate a useful quantum simulation of dynamic localization for studying their anisotropic transport properties, and a promising application of dynamic localization as a building block for quantum information processing in integrated photonics.