Atomically layered van der Waals (vdW) materials exhibit remarkable properties, including highly-confined infrared waveguide modes and the capacity for infrared emission in the monolayer limit. Here, we engineered structures that leverage both of these nano-optical functionalities. Specifically, we encased a photoluminescing atomic sheet of MoTe2 within two bulk crystals of WSe2, forming a vdW waveguide for the embedded light-emitting monolayer. The modified electromagnetic environment offered by the WSe2 waveguide alters MoTe2 spontaneous emission, a phenomenon we directly image with our interferometric nano-photoluminescence technique. We captured spatially-oscillating nanoscale patterns prompted by spontaneous emission from MoTe2 into waveguide modes of WSe2 slabs. We quantify the resulting Purcell-enhanced emission rate within the framework of a waveguide quantum electrodynamics (QED) model, relating the MoTe2 spontaneous emission rate to the measured waveguide dispersion. Our work marks a significant advance in the implementation of all-vdW QED waveguides.
@article{arxiv.2506.10295,
title = {Van der Waals waveguide quantum electrodynamics probed by infrared nano-photoluminescence},
author = {Samuel L. Moore and Hae Yeon Lee and Nicholas Rivera and Yuzuka Karube and Mark Ziffer and Emanuil S. Yanev and Thomas P. Darlington and Aaron J. Sternbach and Madisen A. Holbrook and Jordan Pack and Xiaodong Xu and Cory R. Dean and Jonathan S. Owen and P. James Schuck and Milan Delor and Xiaoyang Zhu and James Hone and Dmitri N. Basov},
journal= {arXiv preprint arXiv:2506.10295},
year = {2025}
}
Comments
14 pages, 5 Figues. Supplementary information can be found in the journal submission Nat. Photon. (2025)