论文标题

捕获 - 离子晶体的质量运动的相位连通感

Phase-coherent sensing of the center-of-mass motion of trapped-ion crystals

论文作者

Affolter, M., Gilmore, K. A., Jordan, J. E., Bollinger, J. J.

论文摘要

捕获的离子是激发离子运动的弱力和电场的敏感探测器。在这里报告了与施加的弱外力相相结合的捕获 - 离子晶体的质量运动的测量。这些实验远非远离陷阱运动频率在大约100离子的二维捕获离子晶体上进行,并确定基本测量的不精确度不受与中心质量模式相关的噪声。通过将离子晶体运动与离子自由度耦合,使用振荡旋转依赖性的光学偶极力来检测晶体的驱动正弦位移。由此产生的诱导自旋表明与晶体的位移幅度成正比,并以接近投射噪声限制的分辨率进行测量。 $ 49 \ $ pm位移以1个测量信号噪声比为1,这是对先前相位 - 结合实验的杂音顺序改善。该位移幅度比零点波动小40美元。以我们的重复率,达到了$ 8.4 \,$ PM $/\ sqrt {\ Mathrm {hz}} $ iptaracement敏感性,这意味着$ 12 \,$ 12 \,$ yn $/\ mathrm {ion}/\ sqrt {\ sqrt { $ 77 \,μ$ v $/$ m $/\ sqrt {\ mathrm {hz}} $对部队和电场的敏感性。当使用质量中心模式进行对谐波时,这种位移灵敏度表明,$ 10^{ - 3} \,$ yn/ion和$ 1 \,$ nv/m的弱力和电场检测的可能性。

Trapped ions are sensitive detectors of weak forces and electric fields that excite ion motion. Here measurements of the center-of-mass motion of a trapped-ion crystal that are phase-coherent with an applied weak external force are reported. These experiments are conducted far from the trap motional frequency on a two-dimensional trapped-ion crystal of approximately 100 ions, and determine the fundamental measurement imprecision of our protocol free from noise associated with the center-of-mass mode. The driven sinusoidal displacement of the crystal is detected by coupling the ion crystal motion to the internal spin-degree of freedom of the ions using an oscillating spin-dependent optical dipole force. The resulting induced spin-precession is proportional to the displacement amplitude of the crystal, and is measured with near-projection-noise-limited resolution. A $49\,$pm displacement is detected with a single measurement signal-to-noise ratio of 1, which is an order-of-magnitude improvement over prior phase-incoherent experiments. This displacement amplitude is $40$ times smaller than the zero-point fluctuations. With our repetition rate, a $8.4\,$pm$/\sqrt{\mathrm{Hz}}$ displacement sensitivity is achieved, which implies $12\,$yN$/\mathrm{ion}/\sqrt{\mathrm{Hz}}$ and $77\,μ$V$/$m$/\sqrt{\mathrm{Hz}}$ sensitivities to forces and electric fields, respectively. This displacement sensitivity, when applied on-resonance with the center-of-mass mode, indicates the possibility of weak force and electric field detection below $10^{-3}\,$yN/ion and $1\,$nV/m, respectively.

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