Exact solutions for a spin-orbit coupled bosonic double-well system
- URL: http://arxiv.org/abs/2210.13724v1
- Date: Tue, 25 Oct 2022 02:43:25 GMT
- Title: Exact solutions for a spin-orbit coupled bosonic double-well system
- Authors: Yunrong Luo, Xuemei Wang, Jia Yi, Wenjuan Li, Xin Xie, and Wenhua Hai
- Abstract summary: We generate analytic exact solutions for an SO-coupled boson held in a driven double well.
Results have potential applications in the preparation of accurate quantum entangled states and quantum information processing.
- Score: 5.412119592723349
- License: http://creativecommons.org/licenses/by-nc-nd/4.0/
- Abstract: Exact solutions for spin-orbit (SO) coupled cold atomic systems are very
important and rare in physics. In this paper, we propose a simple method of
combined modulations to generate the analytic exact solutions for an SO-coupled
boson held in a driven double well. For the cases of synchronous combined
modulations and the spin-conserving tunneling, we obtain the general analytical
accurate solutions of the system respectively. For the case of spin-flipping
tunneling under asynchronous combined modulations, we get the special exact
solutions in simple form when the driving parameters satisfy certain
conditions. Based on these obtained exact solutions, we reveal some intriguing
quantum spin dynamical phenomena, for instance, the arbitrary population
transfer (APT) with and/or without spin-flipping, the controlled coherent
population conservation (CCPC), and the controlled coherent population
inversion (CCPI). The results may have potential applications in the
preparation of accurate quantum entangled states and quantum information
processing.
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