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Dipolar physics: a review of experiments with magnetic quantum gases
被引:192
|作者:
Chomaz, Lauriane
[1
,2
]
Ferrier-Barbut, Igor
[3
,4
,5
]
Ferlaino, Francesca
[1
,6
]
Laburthe-Tolra, Bruno
[7
,8
]
Lev, Benjamin L.
[9
,10
]
Pfau, Tilman
[3
,4
]
机构:
[1] Univ Innsbruck, Inst Experimentalphys, Technikerstr 25, A-6020 Innsbruck, Austria
[2] Heidelberg Univ, Phys Inst, Neuenheimer Feld 226, D-69120 Heidelberg, Germany
[3] Univ Stuttgart, Phys Inst, Pfaffenwaldring 57, D-70550 Stuttgart, Germany
[4] Univ Stuttgart, Ctr Integrated Quantum Sci & Technol, Pfaffenwaldring 57, D-70550 Stuttgart, Germany
[5] Univ Paris Saclay, Inst Opt Grad Sch, CNRS, Lab Charles Fabry, F-91127 Palaiseau, France
[6] Austrian Acad Sci, Inst Quantenopt & Quanteninformat, A-6020 Innsbruck, Austria
[7] Univ Sorbonne Paris Nord, Lab Phys Lasers, F-93430 Villetaneuse, France
[8] CNRS, UMR 7538, LPL, F-93430 Villetaneuse, France
[9] Stanford Univ, Dept Phys & Appl Phys, Stanford, CA 94305 USA
[10] Stanford Univ, Ginzton Lab, Stanford, CA 94305 USA
基金:
欧洲研究理事会;
关键词:
review;
experiments;
quantum gases;
magnetic atoms;
dipolar interactions;
BOSE-EINSTEIN CONDENSATION;
MANY-BODY PROBLEM;
LONG-RANGE ORDER;
ULTRACOLD ATOMS;
GROUND-STATE;
FESHBACH RESONANCES;
PHASE-TRANSITION;
MOTT INSULATOR;
SPIN-EXCHANGE;
SCISSORS MODE;
D O I:
10.1088/1361-6633/aca814
中图分类号:
O4 [物理学];
学科分类号:
0702 ;
摘要:
Since the achievement of quantum degeneracy in gases of chromium atoms in 2004, the experimental investigation of ultracold gases made of highly magnetic atoms has blossomed. The field has yielded the observation of many unprecedented phenomena, in particular those in which long-range and anisotropic dipole-dipole interactions (DDIs) play a crucial role. In this review, we aim to present the aspects of the magnetic quantum-gas platform that make it unique for exploring ultracold and quantum physics as well as to give a thorough overview of experimental achievements. Highly magnetic atoms distinguish themselves by the fact that their electronic ground-state configuration possesses a large electronic total angular momentum. This results in a large magnetic moment and a rich electronic transition spectrum. Such transitions are useful for cooling, trapping, and manipulating these atoms. The complex atomic structure and large dipolar moments of these atoms also lead to a dense spectrum of resonances in their two-body scattering behaviour. These resonances can be used to control the interatomic interactions and, in particular, the relative importance of contact over dipolar interactions. These features provide exquisite control knobs for exploring the few- and many-body physics of dipolar quantum gases. The study of dipolar effects in magnetic quantum gases has covered various few-body phenomena that are based on elastic and inelastic anisotropic scattering. Various many-body effects have also been demonstrated. These affect both the shape, stability, dynamics, and excitations of fully polarised repulsive Bose or Fermi gases. Beyond the mean-field instability, strong dipolar interactions competing with slightly weaker contact interactions between magnetic bosons yield new quantum-stabilised states, among which are self-bound droplets, droplet assemblies, and supersolids. Dipolar interactions also deeply affect the physics of atomic gases with an internal degree of freedom as these interactions intrinsically couple spin and atomic motion. Finally, long-range dipolar interactions can stabilise strongly correlated excited states of 1D gases and also impact the physics of lattice-confined systems, both at the spin-polarised level (Hubbard models with off-site interactions) and at the spinful level (XYZ models). In the present manuscript, we aim to provide an extensive overview of the various related experimental achievements up to the present.
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