2D Weyl‐Semimetal States Achieved by a Thickness‐Dependent Crossover and Topological Phase Transition in Bi0.96Sb0.04 Thin Films

Author:

Jang Chan Wook1,Salawu Yusuff Adeyemi2,Kim Jin Hee1,Nguyen Van Quang3,Kim Min Seop4,Lee Sang‐Eon5,Son Hyebin5,Kim Heon‐Jung6,Rhyee Jong‐Soo1,Hoa Vu Thi7,Cho Sunglae7,Lee Jong Seok4,Jung Myung‐Hwa5,Shon Won Hyuk3,Jeong Tae Jin1,Kim Sung8,Yum Han‐Yup9,Kim Jung Ho9,Wang Xiaolin9,Elliman R. G.10,Park Sang J.11,Kim Junseok11,Jin Hyungyu11,Choi Suk‐Ho1ORCID

Affiliation:

1. Department of Applied Physics and Integrated Education Institute for Frontier Science and Technology (BK21 Four) Kyung Hee University Yongin 17104 South Korea

2. Department of Physics Graduate School Daegu University Gyeongbuk 38453 South Korea

3. Neutron Science Division Korea Atomic Energy Research Institute Daejeon 34057 South Korea

4. Department of Physics and Photon Science School of Physics and Chemistry Gwangju Institute of Science and Technology (GIST) Gwangju 61005 South Korea

5. Department of Physics Sogang University Seoul 04107 South Korea

6. Department of Materials‐Energy Science and Engineering College of Engineering Daegu University Gyeongbuk 38453 South Korea

7. Department of Physics University of Ulsan Ulsan 13557 South Korea

8. Humanitas College Department of Physics, and Integrated Education Institute for Frontier Science and Technology (BK21 Four) Kyung Hee, University Yongin 17104 South Korea

9. Institute for Superconducting and Electronic Materials Australian Institute for Innovative Materials University of Wollongong North Wollongong New South Wales 2500 Australia

10. Department of Electronic Materials Engineering Research School of Physics and Engineering The Australian National University Canberra ACT 0200 Australia

11. Department of Mechanical Engineering Pohang University of Science and Technology (POSTECH) Pohang 37673 South Korea

Abstract

AbstractDespite theoretical expectations for 2D Weyl semimetals (WSMs), realizing stable 2D topological semimetal states experimentally is currently a great challenge. Here, 2D WSM states achieved by a thickness‐dependent topological phase transition from 3D Dirac semimetal to 2D WSM in molecular‐beam‐epitaxy‐grown Bi0.96Sb0.04 thin films are reported. 2D weak anti‐localization (WAL) and chiral anomaly arise in the Bi0.96Sb0.04 films for thicknesses below ≈10 nm, supporting 2D Weyl semimetallic transport in the films. This is particularly evident from magnetoresistance (MR) measurements which show cusp structures at around B = 0, indicating WAL, and negative MR, typical of chiral anomaly, only for layers with thicknesses below ≈10 nm. The temperature dependencies of the dephasing length for various thicknesses are consistent with those of the MR. Analysis based on second harmonic generation, terahertz emission, Seebeck/Hall effects, Raman scattering, X‐ray diffraction, and X‐ray photoemission demonstrates that the Dirac‐ to Weyl‐semimetal phase transition for films thinner than ≈10 nm is induced by inversion‐symmetry breaking due to the lattice‐mismatch strain between the Bi0.96Sb0.04 film and substrate. The realization of 2D WSMs is particularly significant for applications in high‐speed electronics, spintronics, and quantum computations due to their high mobility, chiral spin, and topologically‐protected quantum qubits.

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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