rydberg atoms
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Author(s):  
Simon Ohler ◽  
Maximilian Kiefer-Emmanouilidis ◽  
Antoine Browaeys ◽  
Hans Peter Buechler ◽  
Michael Fleischhauer

Abstract As shown in recent experiments [V. Lienhard et al., Phys. Rev. X 10, 021031 (2020)], spin-orbit coupling in systems of Rydberg atoms can give rise to density-dependent Peierls Phases in second-order hoppings of Rydberg spin excitations and nearest-neighbor (NN) repulsion. We here study theoretically a one-dimensional zig-zag ladder system of such spin-orbit coupled Rydberg atoms at half filling. The second-order hopping is shown to be associated with an effective gauge field, which in mean-field approximation is static and homogeneous. Beyond the mean-field level the gauge potential attains a transverse quantum component whose amplitude is dynamical and linked to density modulations. We here study the effects of this to the possible ground-state phases of the system. In a phase where strong repulsion leads to a density wave, we find that as a consequence of the induced quantum gauge field a regular pattern of current vortices is formed. However also in the absence of density-density interactions the quantum gauge field attains a non-vanishing amplitude. Above a certain critical strength of the second-order hopping the energy gain due to gauge-field induced transport overcomes the energy cost from the associated build-up of density modulations leading to a spontaneous generation of the quantum gauge field.


Foundations ◽  
2022 ◽  
Vol 2 (1) ◽  
pp. 105-113
Author(s):  
Nikolay Kryukov ◽  
Eugene Oks

Previously published analytical results for the effects of a high-frequency laser field on hydrogen Rydberg atoms demonstrated that the unperturbed elliptical orbit of the Rydberg electron, generally is engaged simultaneously in the precession of the orbital plane about the direction of the laser field and in the precession within the orbital plane. These results were obtained while disregarding relativistic effects. In the present paper, we analyze the relativistic effect for hydrogenic Rydberg atoms or ions in a high-frequency linearly- or circularly-polarized laser field, the effect being an additional precession of the electron orbit in its own plane. For the linearly-polarized laser field, the general case, where the electron orbit is not perpendicular to the direction of the laser field, we showed that the precession of the electron orbit within its plane can vanish at some critical polar angle θc of the orbital plane. We calculated analytically the dependence of the critical angle on the angular momentum of the electron and on the parameters of the laser field. Finally, for the particular situation, where the electron orbit is perpendicular to the direction of the laser field, we demonstrated that the relativistic precession and the precession due to the laser field occur in the opposite directions. As a result, the combined effect of these two kinds of the precession is smaller than the absolute value of each of them. We showed that by varying the ratio of the laser field strength F to the square of the laser field frequency ω, one can control the precession frequency of the electron orbit and even make the precession vanish, so that the elliptical orbit of the electron would become stationary. This is a counterintuitive result.


2022 ◽  
Vol 128 (1) ◽  
Author(s):  
Nayan E. Myerson-Jain ◽  
Stephen Yan ◽  
David Weld ◽  
Cenke Xu

Optik ◽  
2021 ◽  
Vol 247 ◽  
pp. 167922
Author(s):  
Chao Li ◽  
Guo Ma ◽  
Bao Wang ◽  
Xiao Jia ◽  
Shengzhao Wang
Keyword(s):  

2021 ◽  
Author(s):  
Sebastian Brandhofer ◽  
Ilia Polian ◽  
Hans Peter Buchler
Keyword(s):  

2021 ◽  
Vol 104 (4) ◽  
Author(s):  
Meng Zhao ◽  
YanLan Wang ◽  
Wei Quan ◽  
XuanYang Lai ◽  
HongPing Liu ◽  
...  

2021 ◽  
Vol 17 (1) ◽  
Author(s):  
Daryl Ryan Chong ◽  
Minhyuk Kim ◽  
Jaewook Ahn ◽  
Heejeong Jeong

2021 ◽  
Author(s):  
Meng Shi ◽  
Yuechun Jiao ◽  
Jianming Zhao
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