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Tuning magnetotransport in a compensated semimetal at the atomic scale

机译:在原子尺度上调整补偿半金属中的磁传输

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Either in bulk form, or in atomically thin crystals, layered transition metal dichalcogenides continuously reveal new phenomena. The latest example is 1T'-WTe2, a semimetal found to exhibit the largest known magnetoresistance in the bulk, and predicted to become a topological insulator in strained monolayers. Here we show that reducing the thickness through exfoliation enables the electronic properties of WTe2 to be tuned, which allows us to identify the mechanisms responsible for the observed magnetotransport down to the atomic scale. The longitudinal resistance and the unconventional magnetic field dependence of the Hall resistance are reproduced quantitatively by a classical two-band model for crystals as thin as six monolayers, whereas a crossover to an Anderson insulator occurs for thinner crystals. Besides establishing the origin of the magnetoresistance of WTe2, our results represent a complete validation of the classical theory for two-band electron-hole transport, and indicate that atomically thin WTe2 layers remain gapless semimetals.
机译:层状过渡金属二卤化物无论是块状形式还是原子薄晶体,都不断显示出新现象。最新的例子是1T'-WTe2,这是一种半金属,被发现在整体中表现出最大的磁阻,并预计将成为应变单层中的拓扑绝缘体。在这里,我们表明通过剥落减小厚度可以调节WTe2的电子性能,这使我们能够确定导致观察到的磁传输直至原子尺度的机理。霍尔电阻的纵向电阻和非常规的磁场依赖性通过经典的两波段模型对厚度仅为六个单层的晶体进行定量再现,而对于较薄的晶体则发生与安德森绝缘子的交叉现象。除了确定WTe2的磁阻起源之外,我们的结果还代表了经典的两带电子空穴传输理论,并且表明原子薄的WTe2层仍然是无间隙的半金属。

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