Author
Listed:
- Xiang Yuan
(Fudan University
Fudan University)
- Zhongbo Yan
(Tsinghua University)
- Chaoyu Song
(Fudan University
Fudan University)
- Mengyao Zhang
(Peking University
Chinese Academy of Sciences)
- Zhilin Li
(Chinese Academy of Sciences
Collaborative Innovation Center of Quantum Matter)
- Cheng Zhang
(Fudan University
Fudan University)
- Yanwen Liu
(Fudan University
Fudan University)
- Weiyi Wang
(Fudan University
Fudan University)
- Minhao Zhao
(Fudan University
Fudan University)
- Zehao Lin
(Fudan University
Fudan University)
- Tian Xie
(Fudan University
Fudan University)
- Jonathan Ludwig
(National High Magnetic Field Laboratory)
- Yuxuan Jiang
(National High Magnetic Field Laboratory)
- Xiaoxing Zhang
(Huazhong University of Science and Technology)
- Cui Shang
(Huazhong University of Science and Technology)
- Zefang Ye
(Fudan University
Fudan University)
- Jiaxiang Wang
(Fudan University
Fudan University)
- Feng Chen
(Fudan University
Fudan University)
- Zhengcai Xia
(Huazhong University of Science and Technology)
- Dmitry Smirnov
(National High Magnetic Field Laboratory)
- Xiaolong Chen
(Chinese Academy of Sciences
Collaborative Innovation Center of Quantum Matter)
- Zhong Wang
(Tsinghua University
Collaborative Innovation Center of Quantum Matter)
- Hugen Yan
(Fudan University
Fudan University)
- Faxian Xiu
(Fudan University
Fudan University
Fudan University)
Abstract
Recently, Weyl semimetals have been experimentally discovered in both inversion-symmetry-breaking and time-reversal-symmetry-breaking crystals. The non-trivial topology in Weyl semimetals can manifest itself with exotic phenomena, which have been extensively investigated by photoemission and transport measurements. Despite the numerous experimental efforts on Fermi arcs and chiral anomaly, the existence of unconventional zeroth Landau levels, as a unique hallmark of Weyl fermions, which is highly related to chiral anomaly, remains elusive owing to the stringent experimental requirements. Here, we report the magneto-optical study of Landau quantization in Weyl semimetal NbAs. High magnetic fields drive the system toward the quantum limit, which leads to the observation of zeroth chiral Landau levels in two inequivalent Weyl nodes. As compared to other Landau levels, the zeroth chiral Landau level exhibits a distinct linear dispersion in magnetic field direction and allows the optical transitions without the limitation of zero z momentum or $$\sqrt B$$ B magnetic field evolution. The magnetic field dependence of the zeroth Landau levels further verifies the predicted particle-hole asymmetry of the Weyl cones. Meanwhile, the optical transitions from the normal Landau levels exhibit the coexistence of multiple carriers including an unexpected massive Dirac fermion, pointing to a more complex topological nature in inversion-symmetry-breaking Weyl semimetals. Our results provide insights into the Landau quantization of Weyl fermions and demonstrate an effective tool for studying complex topological systems.
Suggested Citation
Xiang Yuan & Zhongbo Yan & Chaoyu Song & Mengyao Zhang & Zhilin Li & Cheng Zhang & Yanwen Liu & Weiyi Wang & Minhao Zhao & Zehao Lin & Tian Xie & Jonathan Ludwig & Yuxuan Jiang & Xiaoxing Zhang & Cui , 2018.
"Chiral Landau levels in Weyl semimetal NbAs with multiple topological carriers,"
Nature Communications, Nature, vol. 9(1), pages 1-9, December.
Handle:
RePEc:nat:natcom:v:9:y:2018:i:1:d:10.1038_s41467-018-04080-4
DOI: 10.1038/s41467-018-04080-4
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