Evolution of the Electronic Structure of MoTe2 under Pressure
ORAL
Abstract
Transition metal dichalcogenides have recently been heavily studied owing to their intriguing physical properties such as extremely large magnetoresistance (MR) in WTe2 and MoTe2. Further interests are attracted when they are predicted as candidates of type-II Weyl semimetals. Moreover, as both WTe2 and MoTe2 host superconductivity, this opens up the possibility of topological superconductivity.
In this work, we present the magneto-electronic transport study of MoTe2 under pressure. We did the magneto-resistance measurement with magnetic field up to 14 T and temperature down to 30 mK. The large MR and the Hall coefficient decrease rapidly with increasing pressure. Beyond 10 kbar, where the Td phase is completely suppressed and the superconducting transition temperature Tc is significantly enhanced, the Hall coefficient becomes very small and saturated. We will discuss the evolution of Fermi surface across the temperature-pressure phase diagram. The electronic structure study would help us investigate the ground state and superconductivity of MoTe2.
In this work, we present the magneto-electronic transport study of MoTe2 under pressure. We did the magneto-resistance measurement with magnetic field up to 14 T and temperature down to 30 mK. The large MR and the Hall coefficient decrease rapidly with increasing pressure. Beyond 10 kbar, where the Td phase is completely suppressed and the superconducting transition temperature Tc is significantly enhanced, the Hall coefficient becomes very small and saturated. We will discuss the evolution of Fermi surface across the temperature-pressure phase diagram. The electronic structure study would help us investigate the ground state and superconductivity of MoTe2.
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Presenters
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Yajian Hu
- Department of Physics, The Chinese University of Hong Kong
- Physics, The Chinese University of Hong Kong