| Literature DB >> 33619273 |
Jiangxu Li1,2, Jiaxi Liu1,2, Stanley A Baronett3, Mingfeng Liu1,2, Lei Wang1,2, Ronghan Li1, Yun Chen1,2, Dianzhong Li1,2, Qiang Zhu4, Xing-Qiu Chen5,6.
Abstract
The discovery of topological quantum states marks a new chapter in both condensed matter physics and materials sciences. By analogy to spin electronic system, topological concepts have been extended into phonons, boosting the birth of topological phononics (TPs). Here, we present a high-throughput screening and data-driven approach to compute and evaluate TPs among over 10,000 real materials. We have discovered 5014 TP materials and grouped them into two main classes of Weyl and nodal-line (ring) TPs. We have clarified the physical mechanism for the occurrence of single Weyl, high degenerate Weyl, individual nodal-line (ring), nodal-link, nodal-chain, and nodal-net TPs in various materials and their mutual correlations. Among the phononic systems, we have predicted the hourglass nodal net TPs in TeO3, as well as the clean and single type-I Weyl TPs between the acoustic and optical branches in half-Heusler LiCaAs. In addition, we found that different types of TPs can coexist in many materials (such as ScZn). Their potential applications and experimental detections have been discussed. This work substantially increases the amount of TP materials, which enables an in-depth investigation of their structure-property relations and opens new avenues for future device design related to TPs.Entities:
Year: 2021 PMID: 33619273 PMCID: PMC7900202 DOI: 10.1038/s41467-021-21293-2
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919