English

New Mechanism for Strongly Bound Excitons in Gapless Two-Dimensional Structures

Mesoscale and Nanoscale Physics 2014-09-29 v1 Materials Science

Abstract

Common wisdom asserts that bound excitons cannot form in high-dimensional (d>1) metallic structures because of their overwhelming screening and unavoidable resonance with nearby continuous bands. Strikingly, here we illustrate that this prevalent assumption is not quite true. A key ingredient that has been overlooked is that of viable decoherence that thwarts the formation of resonances. As an example of this general mechanism, we focus on an experimentally relevant material and predict bound excitons in twisted bilayer graphene, which is a two-dimensional gapless structure exhibiting metallic screening. The binding energies calculated by first-principles simulations are surprisingly large. The low-energy effective model reveals that these bound states are produced by a unique destructive coherence between two alike subband resonant excitons. In particular, this destructive coherent effect is not sensitive to the screening and dimensionality, and hence may persist as a general mechanism for creating bound excitons in various metallic structures, opening the door for excitonic applications based on metallic structures.

Keywords

Cite

@article{arxiv.1401.6663,
  title  = {New Mechanism for Strongly Bound Excitons in Gapless Two-Dimensional Structures},
  author = {Yufeng Liang and Ryan Soklaski and Shouting Huang and Matthew W. Graham and Robin Havener and Jiwoong Park and Li Yang},
  journal= {arXiv preprint arXiv:1401.6663},
  year   = {2014}
}

Comments

12 pages and 5 figures

R2 v1 2026-06-22T02:54:59.259Z