Light-induced gauge fields for ultracold atoms

被引:926
作者
Goldman, N. [1 ,2 ]
Juzeliunas, G. [3 ]
Oehberg, P. [4 ]
Spielman, I. B. [5 ,6 ]
机构
[1] Coll France, 11 Pl Marcelin Berthelot, F-75005 Paris, France
[2] UPMC, CNRS, ENS, Lab Kastler Brossel, F-75005 Paris, France
[3] Vilnius Univ, Inst Theoret Phys & Astron, LT-01108 Vilnius, Lithuania
[4] Heriot Watt Univ, Inst Photon & Quantum Sci, SUPA, Edinburgh EH14 4AS, Midlothian, Scotland
[5] NIST, Joint Quantum Inst, Gaithersburg, MD 20899 USA
[6] Univ Maryland, Gaithersburg, MD 20899 USA
基金
英国工程与自然科学研究理事会; 美国国家科学基金会;
关键词
ultracold atoms; gauge potentials; light-matter interaction; BOSE-EINSTEIN CONDENSATION; ARTIFICIAL MAGNETIC-FIELDS; QUANTIZED HALL CONDUCTANCE; OPTICAL LATTICES; COLD ATOMS; BLOCH ELECTRONS; MOTT INSULATOR; TOPOLOGICAL INSULATOR; GEOMETRIC POTENTIALS; POPULATION TRANSFER;
D O I
10.1088/0034-4885/77/12/126401
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Gauge fields are central in our modern understanding of physics at all scales. At the highest energy scales known, the microscopic universe is governed by particles interacting with each other through the exchange of gauge bosons. At the largest length scales, our Universe is ruled by gravity, whose gauge structure suggests the existence of a particle-the graviton-that mediates the gravitational force. At the mesoscopic scale, solid-state systems are subjected to gauge fields of different nature: materials can be immersed in external electromagnetic fields, but they can also feature emerging gauge fields in their low-energy description. In this review, we focus on another kind of gauge field: those engineered in systems of ultracold neutral atoms. In these setups, atoms are suitably coupled to laser fields that generate effective gauge potentials in their description. Neutral atoms 'feeling' laser-induced gauge potentials can potentially mimic the behavior of an electron gas subjected to a magnetic field, but also, the interaction of elementary particles with non-Abelian gauge fields. Here, we review different realized and proposed techniques for creating gauge potentials-both Abelian and non-Abelian-in atomic systems and discuss their implication in the context of quantum simulation. While most of these setups concern the realization of background and classical gauge potentials, we conclude with more exotic proposals where these synthetic fields might be made dynamical, in view of simulating interacting gauge theories with cold atoms.
引用
收藏
页数:60
相关论文
共 486 条
[1]   Interferometric Approach to Measuring Band Topology in 2D Optical Lattices [J].
Abanin, Dmitry A. ;
Kitagawa, Takuya ;
Bloch, Immanuel ;
Demler, Eugene .
PHYSICAL REVIEW LETTERS, 2013, 110 (16)
[2]   Observation of vortex lattices in Bose-Einstein condensates [J].
Abo-Shaeer, JR ;
Raman, C ;
Vogels, JM ;
Ketterle, W .
SCIENCE, 2001, 292 (5516) :476-479
[3]   Anyons and chiral solitons on a line [J].
Aglietti, U ;
Griguolo, L ;
Jackiw, R ;
Pi, SY ;
Seminara, D .
PHYSICAL REVIEW LETTERS, 1996, 77 (21) :4406-4409
[4]   ORIGIN OF THE GEOMETRIC FORCES ACCOMPANYING BERRY GEOMETRIC POTENTIALS [J].
AHARONOV, Y ;
STERN, A .
PHYSICAL REVIEW LETTERS, 1992, 69 (25) :3593-3597
[5]   SIGNIFICANCE OF ELECTROMAGNETIC POTENTIALS IN THE QUANTUM THEORY [J].
AHARONOV, Y ;
BOHM, D .
PHYSICAL REVIEW, 1959, 115 (03) :485-491
[6]   Realization of the Hofstadter Hamiltonian with Ultracold Atoms in Optical Lattices [J].
Aidelsburger, M. ;
Atala, M. ;
Lohse, M. ;
Barreiro, J. T. ;
Paredes, B. ;
Bloch, I. .
PHYSICAL REVIEW LETTERS, 2013, 111 (18)
[7]   Experimental realization of strong effective magnetic fields in optical superlattice potentials [J].
Aidelsburger, M. ;
Atala, M. ;
Nascimbene, S. ;
Trotzky, S. ;
Chen, Y. -A. ;
Bloch, I. .
APPLIED PHYSICS B-LASERS AND OPTICS, 2013, 113 (01) :1-11
[8]   Experimental Realization of Strong Effective Magnetic Fields in an Optical Lattice [J].
Aidelsburger, M. ;
Atala, M. ;
Nascimbene, S. ;
Trotzky, S. ;
Chen, Y. -A. ;
Bloch, I. .
PHYSICAL REVIEW LETTERS, 2011, 107 (25)
[9]  
Aidelsburger M., ARXIV14074205
[10]   Seeing Topological Order in Time-of-Flight Measurements [J].
Alba, E. ;
Fernandez-Gonzalvo, X. ;
Mur-Petit, J. ;
Pachos, J. K. ;
Garcia-Ripoll, J. J. .
PHYSICAL REVIEW LETTERS, 2011, 107 (23)