English

Anomalous Dirac Plasmons in 1D Topological Electrides

Materials Science 2019-11-20 v1 Mesoscale and Nanoscale Physics

Abstract

Plasmon opens up the possibility to efficiently couple light and matter at sub-wavelength scales. In general, the plasmon frequency is dependent of carrier density. This dependency, however, renders fundamentally a weak plasmon intensity at low frequency, especially for Dirac plasmon (DP) widely studied in graphene. Here we demonstrate a new type of DP, excited by a Dirac nodal-surface state, which exhibits an anomalously density-independent frequency. Remarkably, we predict realization of anomalous DP (ADP) in 1D topological electrides, such as Ba3CrN3 and Sr3CrN3, by first-principles calculations. The ADPs in both systems have a density-independent frequency and high intensity, and their frequency can be tuned from terahertz to mid-infrared by changing the excitation direction. Furthermore, the intrinsic weak electron-phonon coupling of anionic electrons in electrides affords an added advantage of ultra-low phonon-assisted damping and hence a long lifetime of the ADPs. Our work paves the way to developing novel plasmonic and optoelectronic devices by combining topological physics with electride materials.

Keywords

Cite

@article{arxiv.1904.05628,
  title  = {Anomalous Dirac Plasmons in 1D Topological Electrides},
  author = {Jianfeng Wang and Xuelei Sui and Shiwu Gao and Wenhui Duan and Feng Liu and Bing Huang},
  journal= {arXiv preprint arXiv:1904.05628},
  year   = {2019}
}
R2 v1 2026-06-23T08:36:36.065Z