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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Efficient vibrational state coupling in an optical tilted-washboard potential via multiple spatial translations and application to pulse echoes
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Efficient vibrational state coupling in an optical tilted-washboard potential via multiple spatial translations and application to pulse echoes

机译:通过多个空间平移将光学倾斜式洗衣机电势中的有效振动状态耦合,并将其应用于脉冲回波

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We measure the application of simple and compound pulses consisting of time-dependent spatial translations to coupling vibrational states of ultracold (85)Rb atoms in a far-detuned 1D optical lattice. The lattice wells are so shallow as to support only two bound states, and we prepare the atoms in the ground state. The lattice is oriented vertically, leading to a tilted-washboard potential analogous to those encountered in condensed-matter systems. Experimentally, we find that a square pulse consisting of lattice displacements and a delay is more efficient than single-step pulses or Gaussian pulses. This is described as an example of coherent control. It is striking that contrary to the intuition that soft pulses minimize loss, the Gaussian pulse is outperformed by the square pulse. Numerical calculations are in strong agreement with our experimental results and show the superiority of the square pulse to the single-step pulse for all lattice depths and to the Gaussian pulse for lattice depths greater than seven lattice recoil energies. We also compare the effectiveness of these pulses for reviving oscillations of atoms in vibrational superposition states using the pulse-echo technique. We find that the square and Gaussian pulses result in higher echo amplitudes than the single-step pulse. These improved echo pulses allow us to probe coherence at longer times than in the past, measuring a plateau which has yet to be explained. In addition, we show numerically that the vibrational state coupling due to such lattice manipulations is more efficient in shallow lattices than in deep lattices. The coupling probability for an optimized single-step pulse approaches 1/e as the depth goes to infinity (harmonic-oscillator limit), while in shallow lattices with large anharmonicity, the coupling probability reaches a maximum value of 0.51 for a lattice depth of five recoil energies. For square and Gaussian pulses the coupling in the lattice is even stronger, reaching maxima of 0.64 at 6 recoil energies and 0.67 at 5 recoil energies, respectively.
机译:我们测量由时间相关的空间平移组成的简单和复合脉冲的应用,以耦合在极不协调的一维光学晶格中的超冷(85)Rb原子的振动状态。晶格阱很浅,以至于仅支持两个结合态,我们准备了处于基态的原子。晶格垂直定向,从而产生类似于冷凝物系统中遇到的倾斜的洗衣板电势。通过实验,我们发现由晶格位移和延迟组成的方波比单步脉冲或高斯脉冲更有效。这被描述为相干控制的示例。令人惊讶的是,与软脉冲使损耗最小化的直觉相反,高斯脉冲的性能优于方波。数值计算与我们的实验结果非常吻合,并且表明方波对于所有晶格深度都优于单步脉冲,而对于大于七个晶格反冲能量的晶格深度则优于高斯脉冲。我们还使用脉冲回波技术比较了这些脉冲在振动叠加状态下恢复原子振荡的有效性。我们发现,平方脉冲和高斯脉冲比单步脉冲产生更高的回波幅度。这些改进的回波脉冲使我们能够以比过去更长的时间探测相干性,从而测量一个尚待解释的平稳期。另外,我们从数值上表明,由于这种晶格操纵而引起的振动状态耦合在浅晶格中比在深晶格中更有效。当深度达到无穷大(谐波振荡器极限)时,优化的单步脉冲的耦合概率接近1 / e,而在非​​谐性较大的浅晶格中,晶格深度为5时,耦合概率达到最大值0.51反冲能量。对于方脉冲和高斯脉冲,晶格中的耦合更强,分别在6个反冲能量处达到0.64的最大值,在5个反冲能量处达到0.67的最大值。

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