| Literature DB >> 28447670 |
Ling-Na Wu1, Xin-Yu Luo1, Zhi-Fang Xu2,3, Masahito Ueda2, Ruquan Wang4,5, L You1,5.
Abstract
Spin-orbit coupling (SOC) plays an essential role in many exotic and interesting phenomena in condensed matter physics. In neutral-atom-based quantum simulations, synthetic SOC constitutes a key enabling element. The strength of SOC realized so far is limited by various reasons or constraints. This work reports tunable SOC synthesized with a gradient magnetic field (GMF) for atoms in a harmonic trap. Nearly ten-fold enhancement is observed when the GMF is modulated near the harmonic-trap resonance in comparison with the free-space situation. A theory is developed that well explains the experimental results. Our work offers a clear physical insight into and analytical understanding of how to tune the strength of atomic SOC synthesized with GMF using harmonic trap resonance.Entities:
Year: 2017 PMID: 28447670 PMCID: PMC5406833 DOI: 10.1038/srep46756
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Harmonic-trap-resonance enhanced SOC. (a) Schematic illustration of the experimental setup, consisting of the bias (gray) and gradient (blue) magnetic coils. The condensate (red football shape) is produced at the center of a crossed optical dipole trap formed from laser beams in pink. Its location coincides with the center of the gradient coil configuration. (b) Time sequence of our experiments. The modulation amplitude (delimited by the blue dashed envelop) of the gradient magnetic field B′(t) (shown in red) is adiabatically ramped up to an effective value corresponding to kso = 1.25 μm−1 within T1 and held on for T2, followed by the Stern-Gerlach (S-G) separation before absorption imaging. To ensure adiabaticity during the ramp, T1 = 250 ms and T2 = 50 ms are chosen for the modulation frequency ω > (2π)100 Hz and T1 = 25τ and T2 = 5τ, with τ = 2π/ω being the modulation period, for ω < (2π)100 Hz. (c) Absorption images for the momentum-shifted atomic clouds in the |m = −1〉 state at different values of ω. Darker red denotes higher optical density. The abscissa is not to scale. Each measured off-set atomic cloud corresponds to a data point shown in (d) in the same order of increasing modulation frequency from left to right. The dashed line denotes k = 0 for without GMF or SOC. (d) The measured values of the scaled SOC strength ζ (black open circles) as a function of ω, which agree perfectly with Eq. (8) shown in the blue dotted curve. In the shaded band region surrounding the trap resonance, the driven atomic cloud fails to adiabatically reach the momentum-shifted equilibrium state after T2.