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首页> 外文期刊>Journal of the Physical Society of Japan >Matter-Wave Fields for Double-Slit Atom Interferometry: Variational Versus Exact Solitons
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Matter-Wave Fields for Double-Slit Atom Interferometry: Variational Versus Exact Solitons

机译:双缝原子干涉测量的物质波场:变形与精确孤子

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摘要

A major challenge in the theoretical modeling of double-slit interferometry involving matter-wave fields is the appropriate waveform to be assigned to this field. While all the studies carried out to date on this issue deal with variational fields, experiments suggest that the optical field is generated by splitting a single-hump Bose-Einstein condensate into two spatially and temporally entangled pulses indicating the possibility of fully controlling the subsequent motion of the two output pulses. To probe the consistency of variational and exact soliton solutions to the field equation, we solve the Gross-Pitaevskii equation with an optical potential barrier assumed to act as a beam splitter, while including gravity. The exact solution is compared with the two most common variational wavefunctions, namely, the Hermite-Gaussian and super-sech modes. From numerical simulations, evidence is given of the exact solution as being the most appropriate matter-wave structure that provides a coherent description of the generation and spatio-temporal evolution of matter-wave optical fields in a hypothetical implementation of double-slit atom interferometry.
机译:涉及物质波场的双缝干涉测量学的理论建模中的主要挑战是要分配给该字段的适当波形。虽然迄今为止关于该问题的所有研究与变分区域进行处理,但实验表明,通过将冷凝物分成两个空间和时间缠绕的脉冲来产生光学场,表示可以完全控制后续运动的可能性两个输出脉冲。为了探测变分和精确的孤子解决方案对现场方程的一致性,我们解决了具有假设用作分束器的光学电位屏障的总储备级等式,而包括重力。将确切的解决方案与两个最常见的变形波发生器进行比较,即Hermite-Gaussian和超级SECH模式。根据数值模拟,给出了确切的解决方案,作为最合适的物质波结构,其在双缝原子干涉法的假设实施中提供了物质波光学场的产生和时空演化的相干描述。

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