论文标题

单原子运动的飞行时间量子断层扫描

Time-of-Flight Quantum Tomography of Single Atom Motion

论文作者

Brown, M. O., Muleady, S. R., Dworschack, W. J., Lewis-Swan, R. J., Rey, A. M., Romero-Isart, O., Regal, C. A.

论文摘要

飞行时间是确定颗粒速度和位于许多功能范围从质谱到流体流量测量值的核心的直观方式。在这里,我们显示飞行时间的成像可以实现单个被困原子的量子运动状态的层析成像。运动的断层扫描需要研究由位置和动量跨越的相位空间。通过将飞行时间的成像与原子在光学镊子陷阱中的连贯演变相结合,我们能够在相空间中访问任意四倍体,而不依赖于耦合到自由度的自由度。为了创建非古典运动状态,我们在光学镊子的多功能潜在景观中利用量子隧道,我们的断层扫描都证明了Wigner功能的负性,并评估了非平稳状态的连贯性。我们所展示的断层扫描概念对一系列颗粒具有广泛的适用性,并能够表征更复杂的系统或大量介电颗粒的非古典状态。

Time of flight is an intuitive way to determine the velocity of particles and lies at the heart of many capabilities ranging from mass spectrometry to fluid flow measurements. Here we show time-of-flight imaging can realize tomography of a quantum state of motion of a single trapped atom. Tomography of motion requires studying the phase space spanned by both position and momentum. By combining time-of-flight imaging with coherent evolution of the atom in an optical tweezer trap, we are able to access arbitrary quadratures in phase space without relying on coupling to a spin degree of freedom. To create non-classical motional states, we harness quantum tunneling in the versatile potential landscape of optical tweezers, and our tomography both demonstrates Wigner function negativity and assesses coherence of non-stationary states. Our demonstrated tomography concept has wide applicability to a range of particles and will enable characterization of non-classical states of more complex systems or massive dielectric particles.

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