论文标题

可控的Josephson连接光子Bose-Einstein冷凝水

Controllable Josephson junction for photon Bose-Einstein condensates

论文作者

Vretenar, Mario, Kassenberg, Ben, Bissesar, Shivan, Toebes, Chris, Klaers, Jan

论文摘要

约瑟夫森连接是最敏感的磁通检测器的基础,约瑟夫森电压标准对单位伏特的定义以及超导数字和量子计算。它们是由于两个相干量子状态的耦合所致,因为它们发生在超导体,超流体,原子玻色子凝结物和激子 - 波利顿冷凝物中。在其基态下,约瑟夫森连接处的特征是固有的阶段跳跃。控制此阶段跳跃对于计算中的应用是至关重要的。在这里,我们在实验上证明了由热可调的电势景观中粒子交换导致的光子玻色子凝结物之间的可控相位关系。我们的实验实现了可控0,$π$ -josephson结的光学类似物。通过连接多个连接,我们可以研究可重构的4构透明系统,以证明我们对模拟自旋玻璃模拟的方法的潜力。更一般而言,我们工作中引入的静态和动态纳米结构技术的组合为实现热平衡内外的自适应光学系统提供了一个强大的平台。

Josephson junctions are the basis for the most sensitive magnetic flux detectors, the definition of the unit volt by the Josephson voltage standard, and superconducting digital and quantum computing. They result from the coupling of two coherent quantum states, as they occur in superconductors, superfluids, atomic Bose-Einstein condensates, and exciton-polariton condensates. In their ground state, Josephson junctions are characterised by an intrinsic phase jump. Controlling this phase jump is fundamental for applications in computing. Here, we experimentally demonstrate controllable phase relations between photon Bose-Einstein condensates resulting from particle exchange in a thermo-optically tunable potential landscape. Our experiment realises an optical analogue of a controllable 0,$π$-Josephson junction. By connecting several junctions, we can study a reconfigurable 4-condensate system demonstrating the potential of our approach for analog spin glass simulation. More generally, the combination of static and dynamic nanostructuring techniques introduced in our work offers a powerful platform for the implementation of adaptive optical systems for paraxial light in and outside of thermal equilibrium.

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