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Origin of the quasi-quantized Hall effect in ZrTe5

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arxiv 2005.12996 v3 pith:3UQLVW5V submitted 2020-05-26 cond-mat.str-el cond-mat.mtrl-sci

Origin of the quasi-quantized Hall effect in ZrTe5

classification cond-mat.str-el cond-mat.mtrl-sci
keywords hallzrte5effectdiracfermiinstabilityquantumresponse
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The quantum Hall effect (QHE) is traditionally considered a purely two-dimensional (2D) phenomenon. Recently, a three-dimensional (3D) version of the QHE has been reported in the Dirac semimetal ZrTe5. It was proposed to arise from a magnetic-field-driven Fermi surface instability, transforming the original 3D electron system into a stack of 2D sheets. Here, we report thermodynamic, thermoelectric and charge transport measurements on ZrTe5 in the quantum Hall regime. The measured thermodynamic properties: magnetization and ultrasound propagation, show no signatures of a Fermi surface instability, consistent with in-field single crystal X-ray diffraction. Instead, a direct comparison of the experimental data with linear response calculations based on an effective 3D Dirac Hamiltonian suggests that the quasi-quantization of the observed Hall response is an intrinsic property of the 3D electronic structure. Our findings render the Hall effect in ZrTe5 a truly 3D counterpart of the QHE in 2D systems.

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