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Topological superconductivity in a van der Waals heterostructure

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arxiv 2002.02141 v3 pith:YP6HPMLS submitted 2020-02-06 cond-mat.mes-hall cond-mat.mtrl-scicond-mat.supr-con

classification cond-mat.mes-hallcond-mat.mtrl-scicond-mat.supr-con
keywords topologicalsuperconductivitydesignerheterostructuresquantumapproachcombiningdifferent
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The designer approach has become a new paradigm in accessing novel quantum phases of matter. Moreover, the realization of exotic states such as topological insulators, superconductors and quantum spin liquids often poses challenging or even contradictory demands for any single material. For example, it is presently unclear if topological superconductivity, which has been suggested as a key ingredient for topological quantum computing, exists at all in any naturally occurring material . This problem can be circumvented by using designer heterostructures combining different materials, where the desired physics emerges from the engineered interactions between the different components. Here, we employ the designer approach to demonstrate two major breakthroughs - the fabrication of van der Waals (vdW) heterostructures combining 2D ferromagnetism with superconductivity and the observation of 2D topological superconductivity. We use molecular-beam epitaxy (MBE) to grow two-dimensional islands of ferromagnetic chromium tribromide (CrBr$_3$) on superconducting niobium diselenide (NbSe$_2$) and show the signatures of one-dimensional Majorana edge modes using low-temperature scanning tunneling microscopy (STM) and spectroscopy (STS). The fabricated two-dimensional vdW heterostructure provides a high-quality controllable platform that can be integrated in device structures harnessing topological superconductivity. Finally, layered heterostructures can be readily accessed by a large variety of external stimuli potentially allowing external control of 2D topological superconductivity through electrical, mechanical, chemical, or optical means.

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  1. Small Energy Gap Revealed in CrBr3 by Scanning Tunneling Spectroscopy

    cond-mat.mtrl-sci 2019-08 conditional novelty 6.0 of 10

    The direct STS measurement shows CrBr3 has a small electronic energy gap, around 0.57 eV peak-to-peak or 0.29 eV onset, instead of the optically quoted 1.68-2.1 eV.

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