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Anderson localization of entangled photons in an integrated quantum walk

机译:积分量子行走中纠缠光子的Anderson局域化

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摘要

First predicted for quantum particles in the presence of a disordered potential, Anderson localization is a ubiquitous effect, observed also in classical systems, arising from the destructive interference of waves propagating in static disordered media. Here we report the observation of this phenomenon for pairs of polarization-entangled photons in a discrete quantum walk affected by position-dependent disorder. By exploiting polarization entanglement of photons to simulate different quantum statistics, we experimentally investigate the interplay between the Anderson localization mechanism and the bosonic/fermionic symmetry of the wavefunction. The disordered lattice is realized by an integrated array of interferometers fabricated in glass by femtosecond laser writing. A novel technique is used to introduce a controlled phase shift into each unit mesh of the network. This approach yields great potential for quantum simulation and for implementing a computational power beyond the one of a classical computer in the 'hard-to-simulate' scenario.
机译:首先在存在无序电势的情况下预测量子粒子,安德森定位是一种普遍存在的效应,在经典系统中也观察到,这是由于在静态无序介质中传播的波的破坏性干扰引起的。在这里,我们报告了在受位置依赖性无序影响的离散量子步态中成对的偏振纠缠光子的现象。通过利用光子的偏振纠缠来模拟不同的量子统计,我们实验性地研究了安德森定位机制与波函数的玻色子/费米子对称性之间的相互作用。无序晶格是通过飞秒激光写入在玻璃中制造的干涉仪的集成阵列来实现的。使用一种新颖的技术将受控的相移引入到网络的每个单位网格中。这种方法在“难以模拟”的情况下,为量子模拟和实现超越传统计算机的计算能力提供了巨大潜力。

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