Quantum oscillation studies in ferromagnetic Mn(Bi<sub>1-x</sub>Sb<sub>x</sub>)<sub>4</sub>Te<sub>7</sub>
ORAL
Abstract
The magnetic topological materials family MnBi2nTe3n+1 provide a unique platform to study the interplay between magnetism and topology. Their great tunability with the structure (by modifying n), chemical doping (with Sb, Pb etc.), and dimensionality (bulk to thin-film device) gives rise to capability to host rich variations of topological states and magnetic structures, paving ways to emergent physics such as quantum anomalous Hall effect and axion insulators. We report our growths and Shubnikov–de Haas oscillation studies on bulk Mn(Bi1-xSbx)4Te7 (0.25<x<0.31) crystals with ferromagnetic ground state, which have been predicted to host different topological states including Axion insulator, Weyl semimetal, and topological crystalline insulator. Using Sb doping to introduce ferromagnetism to the ground state, and to fine-tune the carrier from electron to hole, we map out the evolution of the Fermi surface near the charge neutrality point, shedding light on the effect of magnetism on the bands structure of this system.
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Presenters
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Chaowei Hu
University of California, Los Angeles, University of Washington, Seattle
Authors
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Chaowei Hu
University of California, Los Angeles, University of Washington, Seattle
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Joss P Ayres-Sims
University of Washington, Seattle
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Jonathan M DeStefano
University of Washington
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Elliott W Rosenberg
University of Washington, Stanford University
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David E Graf
Florida State University, National High Magnetic Field Laboratory, National High Magnetic Field Laboratory and Department of Physics, Florida State University
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Xiaodong Xu
University of Washington
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Jiun-Haw Chu
University of Washington, University of Washington, Seattle, Washington, USA