论文标题

使用电磁驱动器在哈伯德蜂窝模型中诱导和控制超导性

Inducing and controlling superconductivity in Hubbard honeycomb model using an electromagnetic drive

论文作者

Kumar, Umesh, Lin, Shi-Zeng

论文摘要

在激光照射下对石墨烯中量子异常效应的最近成功的实验观察证明了通过激光控制单个颗粒带结构的可行性。在这里,我们在存在电磁驱动器的情况下研究了Hubbard Honeycomb模型中的超导性。我们从Hubbard Honeycomb型号开始,在有电磁场驱动器的存在下,无论是圆形和线性极化的光,并将其映射到Floquet $ t $ -J $型号上。我们探讨了可以在系统中诱导超导性(SC)的驱动器的条件。我们研究了单线配对频道中平均场理论中的floquet $ t $ - $ j $模型,并使用Bogoliubov-de Gennes方法探索系统中小掺杂的超导性。我们发现了几个超导阶段,除了标准$ u(1)$对称性外,它们会破坏晶格或时间逆转对称性。我们表明,在存在圆形极化光的情况下,非常规手性SC订单参数($ d \ pm ID $)可以驱动到列表SC订单参数($ s+d $)。 $ D+ID $ SC订单参数打破了时间逆转对称性,并且在拓扑上是非平凡的,并且支持手性边缘模式。我们进一步表明,可以使用线性极化的光提升三重列型退化。因此,我们的工作为Hubbard Honeycomb模型提供了诱导和控制SC的通用框架,并可能应用于石墨烯和其他二维材料。

The recent successful experimental observation of quantum anomalous Hall effect in graphene under laser irradiation demonstrates the feasibility of controlling single particle band structure by lasers. Here we study superconductivity in a Hubbard honeycomb model in the presence of an electromagnetic drive. We start with Hubbard honeycomb model in the presence of an electromagnetic field drive, both circularly and linearly polarized light and map it onto a Floquet $t$-$J$ model. We explore conditions on the drive under which one can induce superconductivity (SC) in the system. We study the Floquet $t$-$J$ model within the mean-field theory in the singlet pairing channel and explore superconductivity for small doping in the system using the Bogoliubov-de Gennes approach. We uncover several superconducting phases, which break lattice or time reversal symmetries in addition to the standard $U(1)$ symmetry. We show that the unconventional chiral SC order parameter ($d \pm id$) can be driven to a nematic SC order parameter ($s+d$) in the presence of a circularly polarized light. The $d+id$ SC order parameter breaks time reversal symmetry and is topologically nontrivial, and supports chiral edge modes. We further show that the three-fold nematic degeneracy can be lifted using linearly polarized light. Our work, therefore, provides a generic framework for inducing and controlling SC in the Hubbard honeycomb model, with possible application to graphene and other two-dimensional materials.

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