论文标题
可调相关驱动的对称对称性破裂在扭曲的双双层石墨烯中
Tunable correlation-driven symmetry breaking in twisted double bilayer graphene
论文作者
论文摘要
由于其平坦的电子分散体,在某些扭曲的范德华(VDW)异质结构中出现了各种相关阶段。特别是,扭曲的双重双层石墨烯(TDBG)的异质结构在传导带的所有四分之一填充物处表现出电场可触发相关的绝缘(CI)状态,并伴随着附近的签名,这些州具有签名,暗示了超导性。在这里,我们报告了TDBG的电运输测量值,其中我们阐明了其相关相图内自发对称性破裂的基本作用。我们观察到在降低CI状态相关的金属相的温度以及相关的非线性$ i $ -V $特性的相关金属阶段时,突然电阻率下降。尽管与超导性的定性相似性,但在霍尔系数的迹象中,伴随着逆转,而是指向自发对称性的破坏,因为突然电阻率下降的起源下降,而焦耳加热似乎是非线性运输的基础。我们的结果表明,在更广泛的半导体平坦频带VDW异质结构中,类似的机制可能是相关的。
A variety of correlated phases have recently emerged in select twisted van der Waals (vdW) heterostructures owing to their flat electronic dispersions. In particular, heterostructures of twisted double bilayer graphene (tDBG) manifest electric field-tunable correlated insulating (CI) states at all quarter fillings of the conduction band, accompanied by nearby states featuring signatures suggestive of superconductivity. Here, we report electrical transport measurements of tDBG in which we elucidate the fundamental role of spontaneous symmetry breaking within its correlated phase diagram. We observe abrupt resistivity drops upon lowering the temperature in the correlated metallic phases neighboring the CI states, along with associated nonlinear $I$-$V$ characteristics. Despite qualitative similarities to superconductivity, concomitant reversals in the sign of the Hall coefficient instead point to spontaneous symmetry breaking as the origin of the abrupt resistivity drops, while Joule heating appears to underlie the nonlinear transport. Our results suggest that similar mechanisms are likely relevant across a broader class of semiconducting flat band vdW heterostructures.