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Ultracold quantum gases and lattice systems: quantum simulation of lattice gauge theories~(**)

机译:超冷量子气体和晶格系统:晶格规理论的量子模拟〜(**)

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摘要

Abelian and non-Abelian gauge theories are of central importance in many areas of physics. In condensed matter physics, AbelianU(1) lattice gauge theories arise in the description of certain quantum spin liquids. In quantum information theory, Kitaev’s toric code is a Z(2) lattice gauge theory. In particle physics, Quantum Chromodynamics (QCD), the non-Abelian SU(3) gauge theory of the strong interactions between quarks and gluons, is nonperturbatively regularized on a lattice. Quantum link models extend the concept of lattice gauge theories beyond the Wilson formulation, and are well suited for both digital and analog quantum simulation using ultracold atomic gases in optical lattices. Since quantum simulators do not suffer from the notorious sign problem, they open the door to studies of the real-time evolution of strongly coupled quantum systems, which are impossible with classical simulation methods. A plethora of interesting lattice gauge theories suggests itself for quantum simulation, which should allow us to address very challenging problems, ranging from confinement and deconfinement, or chiral symmetry breaking and its restoration at finite baryon density, to color superconductivity and the real-time evolution of heavy-ion collisions, first in simpler model gauge theories and ultimately in QCD.
机译:阿贝尔和非阿贝尔规范理论在物理学的许多领域都至关重要。在凝聚态物理中,AbelianU(1)晶格规理论在某些量子自旋液体的描述中出现。在量子信息论中,基塔耶夫的复曲面代码是Z(2)晶格规理论。在粒子物理学中,夸克与胶子之间的强相互作用的非阿贝尔SU(3)规范理论量子色动力学(QCD)在晶格上无扰动正则化。量子链接模型将晶格规理论的概念扩展到了Wilson公式之外,并且非常适合使用光学晶格中的超冷原子气体进行数字和模拟量子模拟。由于量子仿真器不会遭受臭名昭著的符号问题的困扰,因此它们为研究强耦合量子系统的实时演化打开了大门,而传统的仿真方法则无法做到这一点。大量有趣的晶格规理论提出了自己的量子模拟方法,这应该使我们能够解决非常具有挑战性的问题,从限制和解除限制,或者手性对称断裂及其在有限重子密度下的还原,到颜色超导和实时演化重离子碰撞的研究,首先是在更简单的模型规范理论中,最后在QCD中。

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