English

Computation and data driven discovery of topological phononic materials

Materials Science 2021-03-03 v1 Mesoscale and Nanoscale Physics

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 materials. We have clarified 5014 TP materials and classified them into single Weyl, high degenerate Weyl, and nodal-line (ring) TPs. Among them, three representative cases of TPs have been discussed in detail. Furthermore, we suggest 322 TP materials with potential clean nontrivial surface states, which are favorable for experimental characterizations. This work significantly increases the current library 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.

Keywords

Cite

@article{arxiv.2006.00705,
  title  = {Computation and data driven discovery of topological phononic materials},
  author = {Jiangxu Li and Jiaxi Liu and Stanley A. Baronett and Ronghan Li and Lei Wang and Qiang Zhu and Xing-Qiu Chen},
  journal= {arXiv preprint arXiv:2006.00705},
  year   = {2021}
}

Comments

Maintext: 7 pages and 4 figures; Supplementary Materials: 14,246 pages, 5100 supplementary figures and 11,782 supplementary tables

R2 v1 2026-06-23T15:57:04.606Z