English

Ligand-field helical luminescence in a 2D ferromagnetic insulator

Mesoscale and Nanoscale Physics 2018-04-04 v1 Materials Science

Abstract

Bulk chromium triiodide (CrI3_3) has long been known as a layered van der Waals ferromagnet. However, its monolayer form was only recently isolated and confirmed to be a truly two-dimensional (2D) ferromagnet, providing a new platform for investigating light-matter interactions and magneto-optical phenomena in the atomically thin limit. Here, we report spontaneous circularly polarized photoluminescence in monolayer CrI3_3 under linearly polarized excitation, with helicity determined by the monolayer magnetization direction. In contrast, the bilayer CrI3_3 photoluminescence exhibits vanishing circular polarization, supporting the recently uncovered anomalous antiferromagnetic interlayer coupling in CrI3_3 bilayers. Distinct from the Wannier-Mott excitons that dominate the optical response in well-known 2D van der Waals semiconductors, our absorption and layer-dependent photoluminescence measurements reveal the importance of ligand-field and charge-transfer transitions to the optoelectronic response of atomically thin CrI3_3. We attribute the photoluminescence to a parity-forbidden d-d transition characteristic of Cr3+^{3+} complexes, which displays broad linewidth due to strong vibronic coupling and thickness-independent peak energy due to its localized molecular orbital nature.

Keywords

Cite

@article{arxiv.1710.05550,
  title  = {Ligand-field helical luminescence in a 2D ferromagnetic insulator},
  author = {Kyle L. Seyler and Ding Zhong and Dahlia R. Klein and Shiyuan Gao and Xiaoou Zhang and Bevin Huang and Efren Navarro-Moratalla and Li Yang and David H. Cobden and Michael A. McGuire and Wang Yao and Di Xiao and Pablo Jarillo-Herrero and Xiaodong Xu},
  journal= {arXiv preprint arXiv:1710.05550},
  year   = {2018}
}

Comments

12 pages of main text, 4 figures, 6 pages of supplementary materials