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Baryon squishing in synthetic dimensions by effective SU(M) gauge fields

机译:重子通过有效的SU(M)规范场挤压合成尺寸

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摘要

The ``synthetic dimension'' proposal A. Celi et al., Phys. Rev. Lett. 112, 043001 (2014)] uses atoms with M internal states (''flavors'') in a one-dimensional (1D) optical lattice, to realize a hopping Hamiltonian equivalent to the Hofstadter model (tight-binding model with a given magnetic flux per plaquette) on an M-sites-wide square lattice strip. We investigate the physics of SU(M) symmetric interactions in the synthetic dimension system. We show that this system is equivalent to particles with SU(M) symmetric interactions] experiencing an SU(M) Zeeman field at each lattice site and a non-Abelian SU(M) gauge potential that affects their hopping. This equivalence brings out the possibility of generating nonlocal interactions between particles at different sites of the optical lattice. In addition, the gauge field induces a flavor-orbital coupling, which mitigates the ``baryon breaking'' effect of the Zeeman field. For M particles, concomitantly, the SU(M) singlet baryon which is site localized in the usual 1D optical lattice, is deformed to a nonlocal object (''squished baryon''). We conclusively demonstrate this effect by analytical arguments and exact (numerical) diagonalization studies. Our study promises a rich many-body phase diagram for this system. It also uncovers the possibility of using the synthetic dimension system to laboratory realize condensed-matter models such as the SU(M) random flux model, inconceivable in conventional experimental systems.
机译:``综合维度''提案A.Celi等人,Phys。牧师112,043001(2014)]在一维(1D)光学晶格中使用具有M个内部状态(“风味”)的原子,以实现与Hofstadter模型(具有给定磁场的紧束缚模型)等效的跳跃哈密顿量M个位宽的方格子带上的每块球状物通量)。我们研究SU(M)对称尺寸系统中对称相互作用的物理学。我们显示该系统等效于具有SU(M)对称相互作用的粒子],在每个晶格位点都经历一个SU(M)Zeeman场,并影响到其跳跃的非阿贝尔SU(M)规势。这种等效性带来了在光学晶格的不同位置处的粒子之间产生非局部相互作用的可能性。此外,规范场引起了风味-轨道耦合,从而减轻了塞曼场的``重子打破''效应。对于M个粒子,相应地,位于常规一维光学晶格中的SU(M)单重子重子会变形为非局部对象(“压缩重子”)。我们通过分析论证和精确的(数值)对角化研究来最终证明这种效果。我们的研究为该系统提供了丰富的多体相图。它还揭示了使用合成尺寸系统来实验室实现凝聚态模型(例如SU(M)随机通量模型)的可能性,这在常规实验系统中是无法想象的。

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