论文标题

石墨烯/PB0.24SN0.76TE异质结构中的磁转移:寻找避免灾难的方法

Magnetotransport in graphene/Pb0.24Sn0.76Te heterostructures: finding a way to avoid catastrophe

论文作者

Stephen, Gregory M., Naumov, Ivan, Blumenschein, Nicholas A., Sun, Yi-Jan Leo, DeMell, Jennifer E., Shirodkar, Sharmila, Dev, Pratibha, Taylor, Patrick J., Robinson, Jeremy T., Campbell, Paul M., Hanbicki, Aubrey T., Friedman, Adam L.

论文摘要

虽然异质结构是无处不在的工具,可以实现新的物理和设备功能,但可用材料的调色板从未更丰富。两种新兴材料类别(二维材料和拓扑材料)的组合特别有前途,因为很容易访问的可能排列范围很广。单独的石墨烯和PB0.24SN0.76TE(PST)都经过广泛研究,因为石墨烯的高载流子迁移率和PST的拓扑保护表面状态是旋转传输的有吸引力的平台。在这里,我们将单层石墨烯与PST结合在一起,并演示具有相对于组成部分增强的特性的混合系统。使用MagnetTransport测量值,我们发现载流子的迁移率最高20,000 cm2/vs,而磁持近100%,比堆叠之前的任何一种材料都要大。我们还确定有两个不同的传输通道,并确定4.5 ps的自旋松弛时间的下限。结果可以使用极性灾难模型来解释,从而,由于极性/非极性界面相互作用,高迁移率界面状态是由电荷的重新配置而产生的。我们的结果表明,在这些新型材料中,邻近诱导的具有混合特性的界面状态可以添加到仍在增长的显着行为列表中。

While heterostructures are ubiquitous tools enabling new physics and device functionalities, the palette of available materials has never been richer. Combinations of two emerging material classes, two-dimensional materials and topological materials, are particularly promising because of the wide range of possible permutations that are easily accessible. Individually, both graphene and Pb0.24Sn0.76Te (PST) are widely investigated for spintronic applications because graphene's high carrier mobility and PST's topologically protected surface states are attractive platforms for spin transport. Here, we combine monolayer graphene with PST and demonstrate a hybrid system with properties enhanced relative to the constituent parts. Using magnetotransport measurements, we find carrier mobilities up to 20,000 cm2/Vs and a magnetoresistance approaching 100 percent, greater than either material prior to stacking. We also establish that there are two distinct transport channels and determine a lower bound on the spin relaxation time of 4.5 ps. The results can be explained using the polar catastrophe model, whereby a high mobility interface state results from a reconfiguration of charge due to a polar/non-polar interface interaction. Our results suggest that proximity induced interface states with hybrid properties can be added to the still growing list of remarkable behaviors in these novel materials.

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