@article{a9920c1b31974cf1adf5f6f87fc3ccf1,
title = "Topological chiral crystals with helicoid-arc quantum states",
abstract = "The quantum behaviour of electrons in materials is the foundation of modern electronics and information technology1–11, and quantum materials with topological electronic and optical properties are essential for realizing quantized electronic responses that can be used for next generation technology. Here we report the first observation of topological quantum properties of chiral crystals6,7 in the RhSi family. We find that this material class hosts a quantum phase of matter that exhibits nearly ideal topological surface properties originating from the crystals{\textquoteright} structural chirality. Electrons on the surface of these crystals show a highly unusual helicoid fermionic structure that spirals around two high-symmetry momenta, indicating electronic topological chirality. The existence of bulk multiply degenerate band fermions is guaranteed by the crystal symmetries; however, to determine the topological invariant or charge in these chiral crystals, it is essential to identify and study the helicoid topology of the arc states. The helicoid arcs that we observe on the surface characterize the topological charges of ±2, which arise from bulk higher-spin chiral fermions. These topological conductors exhibit giant Fermi arcs of maximum length (π), which are orders of magnitude larger than those found in known chiral Weyl fermion semimetals5,8–11. Our results demonstrate an electronic topological state of matter on structurally chiral crystals featuring helicoid-arc quantum states. Such exotic multifold chiral fermion semimetal states could be used to detect a quantized photogalvanic optical response, the chiral magnetic effect and other optoelectronic phenomena predicted for this class of materials6.",
author = "Sanchez, {Daniel S.} and Ilya Belopolski and Cochran, {Tyler A.} and Xitong Xu and Yin, {Jia Xin} and Guoqing Chang and Weiwei Xie and Kaustuv Manna and Vicky S{\"u}{\ss} and Huang, {Cheng Yi} and Nasser Alidoust and Daniel Multer and Zhang, {Songtian S.} and Nana Shumiya and Xirui Wang and Wang, {Guang Qiang} and Chang, {Tay Rong} and Claudia Felser and Xu, {Su Yang} and Shuang Jia and Hsin Lin and Hasan, {M. Zahid}",
note = "Funding Information: Acknowledgements Work at Princeton and Princeton-led ARPES measurements and theoretical work reported here were supported by the US Department of Energy under a Basic Energy Sciences grant (number DOE/ BES DE-FG-02-05ER46200). M.Z.H. acknowledges a Visiting Scientistship at the Materials Science Division of Lawrence Berkeley National Laboratory. This research used resources of the Advanced Light Source, which is a DOE Office of Science Facility, under contract number DE-AC02-05CH11231. S.J. was supported by the National Natural Science Foundation of China (U1832214, 11774007), the National Key R&D Program of China (2018YFA0305601) and the Key Research Program of the Chinese Academy of Science (grant number XDPB08-1). H.L. acknowledges Academia Sinica, Taiwan for support under the Innovative Materials and Analysis Technology Exploration (AS-iMATE-107-11) programme. T.-R.C. is supported by the Young Scholar Fellowship Program of the Ministry of Science and Technology (MOST) in Taiwan, under the MOST Grant for the Columbus Program (MOST107-2636-M-006-004), National Cheng Kung University, Taiwan, and National Center for Theoretical Sciences (NCTS), Taiwan. C.F. acknowledges financial support by the ERC through Advanced Grant number 291472 (Idea Heusler) and 742068 (TOPMAT). The authors thank S. K. Mo and J. D. Denlinger for beamline support at the Advanced Light Source in Berkeley, California. We thank R. Dhall of the Molecular Foundry at LBL in Berkeley, California for assistance. M.Z.H. acknowledges support from the Miller Institute of Basic Research in Science at the University of California in Berkeley in the form of a Visiting Miller Professorship during the early stages of this work. We also thank G. Bian and H. Verlinde for discussions. Publisher Copyright: {\textcopyright} 2019, The Author(s), under exclusive licence to Springer Nature Limited.",
year = "2019",
month = mar,
day = "28",
doi = "10.1038/s41586-019-1037-2",
language = "English (US)",
volume = "567",
pages = "500--505",
journal = "Nature",
issn = "0028-0836",
publisher = "Nature Publishing Group",
number = "7749",
}