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Optical Signatures of Antiferromagnetic Ordering of Fermionic Atoms in an Optical Lattice

机译:光学晶格中费米原子的反铁磁有序性的光学特征

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We show how off-resonant light scattering can provide quantitative information on antiferromagnetic ordering of a two-species fermionic atomic gas in a tightly-confined two-dimensional optical lattice. We analyze the emerging magnetic ordering of atoms in the mean-field and in random phase approximations and show how the many-body static and dynamic correlations, evaluated in the standard Feynman-Dyson perturbation series, can be detected in the scattered light signal. The staggered magnetization reveals itself in the magnetic Bragg peaks of the individual spin components. These magnetic peaks, however, can be considerably suppressed in the absence of a true long-range antiferromagnetic order. The light scattered outside the diffraction orders can be collected by a lens with highly improved signal-to-shot-noise ratio when the diffraction maxima are blocked. The collective and single-particle excitations are identified in the spectrum of the scattered light. We find that the spin-conserving and spin-exchanging atomic transitions convey information on density, longitudinal spin, and transverse spin correlations. The different correlations and scattering processes exhibit characteristic angular distribution profiles for the scattered light, and e.g., the diagnostic signal of transverse spin correlations could be separated from the optical response by the scattering direction, frequency, or polarization. We also analyze the detection accuracy by estimating the number of required measurements, constrained by the heating rate that is determined by inelastic light-scattering events. The imaging technique could be extended to the two-species fermionic states in other regions of the phase diagram where the ground-state properties are still not fully understood.
机译:我们展示了非共振光散射如何在紧密约束的二维光学晶格中提供关于两种铁氧原子气体的反铁磁有序性的定量信息。我们分析了平均场和随机相位近似中出现的原子的磁性排序,并显示了如何在散射光信号中检测到以标准费曼-戴森微扰级数评估的多体静态和动态相关性。交错的磁化强度在各个自旋分量的磁布拉格峰中显示出来。但是,在没有真正的远距离反铁磁序的情况下,这些磁峰可以被大大抑制。当衍射最大值被阻挡时,散射衍射级以外的光可以由具有很高信噪比的透镜收集。在散射光的光谱中识别出集体和单粒子激发。我们发现自旋守恒和自旋交换原子跃迁传达了有关密度,纵向自旋和横向自旋相关性的信息。不同的相关性和散射过程显示出散射光的特征角分布轮廓,例如,横向自旋相关性的诊断信号可以通过散射方向,频率或偏振与光学响应分开。我们还通过估计所需测量的数量来分析检测精度,这些测量受非弹性光散射事件确定的加热速率的限制。成像技术可以扩展到相图的其他区域中的两个物种的铁离子状态,在这些区域中,基态特性仍然没有被完全理解。

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