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Emergent quantum Hall effects below 50 mT in a two-dimensional topological insulator

机译:紧急量子霍尔在二维拓扑绝缘体中低于50吨

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The realization of the quantum spin Hall effect in HgTe quantum wells has led to the development of topological materials, which, in combination with magnetism and superconductivity, are predicted to host chiral Majorana fermions. However, the large magnetization in conventional quantum anomalous Hall systems makes it challenging to induce superconductivity. Here, we report two different emergent quantum Hall effects in (Hg,Mn)Te quantum wells. First, a previously unidentified quantum Hall state emerges from the quantum spin Hall state at an exceptionally low magnetic field of ~50 mT. Second, tuning toward the bulk p -regime, we resolve quantum Hall plateaus at fields as low as 20 to 30 mT, where transport is dominated by a van Hove singularity in the valence band. These emergent quantum Hall phenomena rely critically on the topological band structure of HgTe, and their occurrence at very low fields makes them an ideal candidate for realizing chiral Majorana fermions.
机译:在HGTE量子阱中实现量子旋转霍尔效应导致了拓扑材料的发展,其与磁性和超导电联合,预计将举办手性主旨的Majorana Fermions。然而,传统量子异常霍尔系统中的大磁化使其充满诱导超导性。在这里,我们在(Hg,Mn)Te量子孔中报告了两种不同的紧急量子霍尔效应。首先,以前低磁场的量子旋转霍尔态出现先前未识别的量子霍尔状态,以〜50mT的异常低磁场。其次,朝向散装P-regime调整,我们将量子霍尔平原在低至20到30吨的场上,运输在价带中的van Hove奇点主导。这些紧急量子霍尔现象依赖于HGTE的拓扑带结构,并且它们在非常低的田地中的发生使其成为实现手性马太基亚球童的理想候选者。

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