Tunable spin-orbit coupled Bose-Einstein condensates in deep optical lattices
M. Salerno, F.Kh. Abdullaev, A. Gammal, Lauro Tomio

TL;DR
This paper demonstrates how spin-orbit coupling in Bose-Einstein condensates within deep optical lattices can be tuned via a periodic Zeeman field, affecting the spectrum, localized states, and stability of the system.
Contribution
It introduces a mean-field model showing SOC tunability through Zeeman field modulation and analyzes the spectral and localization properties of the system.
Findings
SOC tunability is achieved by Zeeman field modulation.
The linear spectrum's extremal curves are piecewise functions of the tuning parameter.
Localized states in band gaps are affected by interactions and SOC tuning.
Abstract
Binary mixtures of Bose-Einstein condensates trapped in deep optical lattices and subjected to equal contributions of Rashba and Dresselhaus spin-orbit coupling (SOC), are investigated in the presence of a periodic time modulation of the Zeeman field. SOC tunability is explicitly demonstrated by adopting a mean-field tight-binding model for the BEC mixture and by performing an averaging approach in the strong modulation limit. In this case, the system can be reduced to an unmodulated vector discrete nonlinear Schr\"odinger equation with a rescaled SOC tunning parameter , which depends only on the ratio between amplitude and frequency of the applied Zeeman field. The dependence of the spectrum of the linear system on has been analytically characterized. In particular, we show that extremal curves (ground and highest excited states) of the linear spectrum are continuous…
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