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奇点在耦合 Gross-Pitaevskii 方程的矩阵中和在三种物质凝聚物中的相关状态跃迁。

Singularity in the matrix of the coupled Gross-Pitaevskii equations and the related state-transitions in three-species condensates.

机构信息

Department of Physics, Shaoguan University, Shaoguan, 512005, P. R. China.

State Key Laboratory of Theoretical Physics, Institute of Theoretical Physics, Chinese Academy of Sciences, Beijing, 100190, China.

出版信息

Sci Rep. 2017 Jul 26;7(1):6585. doi: 10.1038/s41598-017-06843-3.

Abstract

An approach is proposed to solve the coupled Gross-Pitaevskii equations (CGP) of the 3-species BEC in an analytical way under the Thomas-Fermi approximation (TFA). It was found that, when the strength of a kind of interaction increases and crosses over a critical value, a specific type of state-transition will occur and will cause a jump in the total energy. Due to the jump, the energy of the lowest symmetric state becomes considerably higher. This leaves a particular opportunity for the lowest asymmetric state to replace the symmetric states as the ground state. It was further found that the critical values are related to the singularity of either the matrix or a sub-matrix of the CGP. These critical values are not arising from the TFA but inherent in the CGP, and they can be analytically expressed. Furthermore, a model (in which two kinds of atoms separated from each other asymmetrically) has been proposed for the evaluation of the energy of the lowest asymmetric state. With this model the emergence of the asymmetric ground state is numerically confirmed under the TFA. The theoretical formalism of this paper is quite general and can be generalized for BEC with more than three species.

摘要

提出了一种解析方法来求解 Thomas-Fermi 近似(TFA)下 3 种 BEC 的耦合 Gross-Pitaevskii 方程(CGP)。研究发现,当一种相互作用的强度增加并超过一个临界值时,会发生特定类型的状态转变,并导致总能量发生跳跃。由于跳跃,最低对称态的能量会显著升高。这为最低非对称态作为基态取代对称态提供了一个特定的机会。进一步发现,临界值与 CGP 的矩阵或子矩阵的奇点有关。这些临界值不是来自 TFA,而是 CGP 固有的,可以进行解析表达。此外,还提出了一种模型(其中两种原子不对称地分开)来评估最低非对称态的能量。利用该模型,在 TFA 下数值证实了非对称基态的出现。本文的理论公式非常通用,可以推广到具有超过 3 种原子的 BEC。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81a2/5529601/be16dcecd963/41598_2017_6843_Fig1_HTML.jpg

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