Unique effects in a response of ultracold atomic gases of alkali-metal atoms in the state with a bose-einstein condensate to the perturbation by an external electromagnetic field

Author(s):  
Yu.V Slyusarenko ◽  
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A.G. Sotnikov ◽  
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...  
2001 ◽  
Vol 64 (4) ◽  
Author(s):  
Hai-jun Wang ◽  
Xue-xi Yi ◽  
Xin-wu Ba ◽  
Chang-pu Sun

2021 ◽  
Vol 9 ◽  
Author(s):  
Chunyu Jia ◽  
Rukuan Wu ◽  
Ying Hu ◽  
Wu-Ming Liu ◽  
Zhaoxin Liang

Magnetic soliton is an intriguing nonlinear topological excitation that carries magnetic charges while featuring a constant total density. So far, it has only been studied in the ultracold atomic gases with the framework of the equilibrium physics, where its stable existence crucially relies on a nearly spin-isotropic, antiferromagnetic, interaction. Here, we demonstrate that magnetic soliton can appear as the exact solutions of dissipative Gross–Pitaevskii equations in a linearly polarized spinor polariton condensate with the framework of the non-equilibrium physics, even though polariton interactions are strongly spin anisotropic. This is possibly due to a dissipation-enabled mechanism, where spin excitation decouples from other excitation channels as a result of gain-and-loss balance. Such unconventional magnetic soliton transcends constraints of equilibrium counterpart and provides a novel kind of spin-polarized polariton soliton for potential application in opto-spintronics.


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