论文标题

1T-TAS2/基于石墨烯的范德华异质结构的面外运输

Out-of-plane transport of 1T-TaS2/graphene-based van der Waals heterostructures

论文作者

Boix-Constant, Carla, Mañas-Valero, Samuel, Córdoba, Rosa, Baldoví, José J., Rubio, Ángel, Coronado, Eugenio

论文摘要

由于它们的各向异性,分层材料是研究紧密相关系统中平面内和平面外纠缠之间的相互作用的出色候选者。 1T-TAS2提供了一个相关的示例,该示例由于存在多个电荷密度波(CDW)配置而表现出多方面的电子和磁场。它包括量子隐藏相,超导性和外来量子自旋液体(QSL)状态,它们高度依赖于CDW的平面外堆叠。在此系统中,CDW的层间堆叠对于解释基础电子和磁相图至关重要。在这里,基于几层石墨烯(FLG)接触的垂直范德华异质结构中的1T-TAS2的薄层及其电气传输特性进行了整合。清楚地观察到了电导率中的不同激活能和在费米水平上的间隙。我们的实验发现得到了完全自洽的DFT+U计算的支持,该计算证明了在几层极限内存在能量差距,不一定来自于低温下的平面外旋转双层双层双层的形成,正如先前提议的体积所提议的那样。这些结果突出了维度是理解1T-TAS2的性质的关键效果,并为低维QSL的实验实现打开了大门。

Due to their anisotropy, layered materials are excellent candidates for studying the interplay between the in-plane and out-of-plane entanglement in strongly correlated systems. A relevant example is provided by 1T-TaS2, which exhibits a multifaceted electronic and magnetic scenario due to the existence of several charge density wave (CDW) configurations. It includes quantum hidden phases, superconductivity and exotic quantum spin liquid (QSL) states, which are highly dependent on the out-of-plane stacking of the CDW. In this system, the interlayer stacking of the CDW is crucial for the interpretation of the underlying electronic and magnetic phase diagram. Here, thin-layers of 1T-TaS2 are integrated in vertical van der Waals heterostructures based on few-layer graphene (FLG) contacts and their electrical transport properties are measured. Different activation energies in the conductance and a gap at the Fermi level are clearly observed. Our experimental findings are supported by fully self-consistent DFT+U calculations, which evidence the presence of an energy gap in the few-layer limit, not necessarily coming from the formation of out-of-plane spin-paired bilayers at low temperatures, as previously proposed for the bulk. These results highlight dimensionality as a key effect for understanding the properties of 1T-TaS2 and opens the door to the possible experimental realization of low-dimensional QSLs.

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