| Literature DB >> 28244324 |
Xiang Yuan1,2, Peihong Cheng1,2, Longqiang Zhang3,4, Cheng Zhang1,2, Junyong Wang5, Yanwen Liu1,2, Qingqing Sun6, Peng Zhou6, David Wei Zhang6, Zhigao Hu5, Xiangang Wan3,4, Hugen Yan1,2, Zhiqiang Li7, Faxian Xiu1,2.
Abstract
Three-dimensional topological Dirac semimetals have hitherto stimulated unprecedented research interests as a new class of quantum materials. Breaking certain types of symmetries has been proposed to enable the manipulation of Dirac fermions, and that was soon realized by external modulations such as magnetic fields. However, an intrinsic manipulation of Dirac states, which is more efficient and desirable, remains a significant challenge. Here, we report a systematic study of quasi-particle dynamics and band evolution in Cd3As2 thin films with controlled chromium (Cr) doping by both magneto-infrared spectroscopy and electrical transport. We observe the √B relation of inter-Landau-level resonance in Cd3As2, an important signature of ultrarelativistic massless state inaccessible in previous optical experiments. A crossover from quantum to quasi-classical behavior makes it possible to directly probe the mass of Dirac fermions. Importantly, Cr doping allows for a Dirac mass acquisition and topological phase transition enabling a desired dynamic control of Dirac fermions. Corroborating with the density-functional theory calculations, we show that the mass generation can be explained by the explicit C4 rotation symmetry breaking and the resultant Dirac gap engineering through Cr substitution for Cd atoms. The manipulation of the system symmetry and Dirac mass in Cd3As2 thin films provides a tuning knob to explore the exotic states stemming from the parent phase of Dirac semimetals.Entities:
Keywords: Cd3As2; Dirac semimetal; mass generation; topological phase transition
Year: 2017 PMID: 28244324 DOI: 10.1021/acs.nanolett.6b04778
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189