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Measurement of Electronic Structure and Surface Reconstruction in the Superionic Cu2-xTe

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arxiv 2105.11375 v1 pith:TG32BIKL submitted 2021-05-24 cond-mat.mtrl-sci

Measurement of Electronic Structure and Surface Reconstruction in the Superionic Cu2-xTe

classification cond-mat.mtrl-sci
keywords electronicreconstructionstructuretemperaturecu2-xteexperimentssurfacearpes
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Recently, layered copper chalcogenides Cu2X family (X=S, Se, Te) has attracted tremendous research interests due to their high thermoelectric (TE) performance, which is partly due to the superionic behavior of mobile Cu ions, making these compounds phonon liquids. Here, we systematically investigate the electronic structure and its temperature evolution of the less studied single crystal Cu2-xTe by the combination of angle resolved photoemission spectroscopy (ARPES) and scanning tunneling microscope/spectroscopy (STM/STS) experiments. While the band structure of the Cu2-xTe shows agreement with the calculations, we clearly observe a 2 * 2 surface reconstruction from both our low temperature ARPES and STM/STS experiments which survives up to room temperature. Interestingly, our low temperature STM experiments further reveal multiple types of reconstruction patterns, which suggests the origin of the surface reconstruction being the distributed deficiency of liquid-like Cu ions. Our findings reveal the electronic structure and impurity level of Cu2Te, which provides knowledge about its thermoelectric properties from the electronic degree of freedom.

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