论文标题

真空中光片的纳米颗粒阵列的按需组装

On-demand assembly of optically-levitated nanoparticle arrays in vacuum

论文作者

Yan, Jiangwei, Yu, Xudong, Han, Zheng Vitto, Li, Tongcang, Zhang, Jing

论文摘要

在当前的物理研究中,实现大规模完全控制的量子系统是一项艰巨的任务,并且具有广泛的应用。真空中光学镊子中的超速原子和分子阵列已用于量子模拟,量子计量和量子计算。最近,证明了真空中单个光学悬浮的纳米颗粒的质量基态冷却,为研究宏观量子力学和精确测量提供了前所未有的机会。在这项工作中,我们在真空中创建了一个可重新配置的光学脱位纳米颗粒阵列。我们的光呈水平纳米颗粒阵列允许对单个纳米颗粒的完全控制形成任意模式并检测其运动。作为一个具体的示例,我们选择两个纳米颗粒,而不旋转信号从阵列旋转信号来通过将它们合并为一个陷阱来合成纳米铃。纳米贝尔合成的原位可以旋转1 GHz。我们的工作为研究宏观多体物理学提供了一个新的平台。

Realizing a large-scale fully controllable quantum system is a challenging task in current physical research and has broad applications. Ultracold atom and molecule arrays in optical tweezers in vacuum have been used for quantum simulation, quantum metrology and quantum computing. Recently, quantum ground state cooling of the center-of-mass motion of a single optically levitated nanoparticle in vacuum was demonstrated, providing unprecedented opportunities for studying macroscopic quantum mechanics and precision measurements. In this work, we create a reconfigurable optically-levitated nanoparticle array in vacuum. Our optically-levitated nanoparticle array allows full control of individual nanoparticles to form an arbitrary pattern and detect their motion. As a concrete example, we choose two nanoparticles without rotation signals from an array to synthesize a nanodumbbell in-situ by merging them into one trap. The nanodumbbell synthesized in-situ can rotate beyond 1 GHz. Our work provides a new platform for studying macroscopic many-body physics.

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