论文标题
一维$ \ mathbb {z} _2 $ lattice量规理论中的降低诱发挫败感
Confinement Induced Frustration in a One-Dimensional $\mathbb{Z}_2$ Lattice Gauge Theory
论文作者
论文摘要
耦合到衡量场的动力电荷会导致高度非本地相互作用与线性限制电势。结果,单个颗粒结合到介子中,在一个维度上,它们成为新兴的luttinger液体的新成分。此外,在相称的填充物中,可以通过在电荷之间包括最近的邻居(nn)相互作用来稳定不同的莫特胰岛状态。但是,此类模型中预期的丰富相图尚未得到充分探索,并且仍然缺乏全面的理论解释。在这里,通过结合数值和分析工具,我们研究了一个简单的一维$ \ mathbb {z} _2 $ lattice仪表理论,即半填充,在其中,u $(1)$ MATTER与衡量领域并通过NN抑制进行了互动。我们发现了一个丰富的相图,一方面,本地NN相互作用稳定了单个电荷(或部分)的莫特状态,另一方面稳定了luttinger液体。此外,在这两个阶段之间的界面上,由于当地NN排斥与非本地限制相互作用之间的竞争,我们发现了高度沮丧的政权,实现了预先形成的Parton等离子体。我们的工作是由超速原子实验的最新进展激发的,在该实验中,可以很容易地实施这种简单的模型。因此,我们计算了静态结构因子,我们建议将其作为一个简单的探针,以探索实验设置中的相图。
Coupling dynamical charges to gauge fields can result in highly non-local interactions with a linear confining potential. As a consequence, individual particles bind into mesons which, in one dimension, become the new constituents of emergent Luttinger liquids. Furthermore, at commensurate fillings, different Mott-insulating states can be stabilized by including nearest-neighbour (NN) interactions among charges. However, rich phase diagrams expected in such models have not been fully explored and still lack comprehensive theoretical explanation. Here, by combining numerical and analytical tools, we study a simple one-dimensional $\mathbb{Z}_2$ lattice gauge theory at half-filling, where U$(1)$ matter is coupled to gauge fields and interacts through NN repulsion. We uncover a rich phase diagram where the local NN interaction stabilizes a Mott state of individual charges (or partons) on the one hand, and a Luttinger liquid of confined mesons on the other. Furthermore, at the interface between these two phases, we uncover a highly frustrated regime arising due to the competition between the local NN repulsion and the non-local confining interactions, realizing a pre-formed parton plasma. Our work is motivated by the recent progress in ultracold atom experiments, where such simple model could be readily implemented. For this reason we calculate the static structure factor which we propose as a simple probe to explore the phase diagram in an experimental setup.