论文标题
磁封装的扭曲双层石墨烯中的自发山谷螺旋
Spontaneous Valley Spirals in Magnetically Encapsulated Twisted Bilayer Graphene
论文作者
论文摘要
Van der waals异质结构为新兴物理学提供了丰富的平台,因为它们对电子轨道和自旋的自由度的可调杂交。在这里,我们表明,夹在铁磁绝缘子之间的扭曲双层石墨烯形成的异质结构会形成依赖于扭曲,交换接近和自旋轨道耦合之间的相互作用的平坦带。我们证明,在这种平坦的策略中,自由度的自由度被杂交,从而导致有效的三角形超级晶格与山谷作为堕落的假性自由度。将电子相互作用纳入半填充会导致自发的山谷混合状态,即在山谷部门的相关状态,并在山谷旋转器中遇到几何挫败感。我们表明,电层层偏置在有效模型中产生人造山谷 - 轨道耦合,控制山谷各向异性和相关状态的显微镜细节,两者都以valley-heisenberg模型为单位,并通过易于平面的型号偏见。我们的结果提出了在磁性范德华异质结构之间封装的扭曲石墨烯,作为探索石墨烯中纯粹与山谷相关状态的平台。
Van der Waals heterostructures provide a rich platform for emergent physics due to their tunable hybridization of electronic orbital- and spin-degrees of freedom. Here, we show that a heterostructure formed by twisted bilayer graphene sandwiched between ferromagnetic insulators develops flat bands stemming from the interplay between twist, exchange proximity and spin-orbit coupling. We demonstrate that in this flat-band regime, the spin degree of freedom is hybridized, giving rise to an effective triangular superlattice with valley as a degenerate pseudospin degree of freedom. Incorporating electronic interactions at half-filling leads to a spontaneous valley-mixed state, i.e., a correlated state in the valley sector with geometric frustration of the valley spinor. We show that an electric interlayer bias generates an artificial valley-orbit coupling in the effective model, controlling both the valley anisotropy and the microscopic details of the correlated state, with both phenomena understood in terms of a valley-Heisenberg model with easy-plane anisotropic exchange. Our results put forward twisted graphene encapsulated between magnetic van der Waals heterostructures as platforms to explore purely valley-correlated states in graphene.