Quantitative cavity-enhanced photothermal dynamics in TMDC-integrated ultrahigh-Q microcavities
Abstract
We investigate photothermal effects in monolayer transition metal dichalcogenides (TMDCs) integrated with an ultrahigh-Q silica microcavity. Launching a continuous-wave laser into a cavity resonance enables controlled intracavity heating, allowing direct observation of excitonic photoluminescence (PL) modulation. A distinct redshift of the PL peak energy is observed as the pump wavelength is tuned across resonance. This behavior is quantitatively reproduced by a temperature-dependent bandgap model that combines the Varshni relation with the thermo-optic response of the microcavity, from which the local temperature rise can be estimated. We further find that PL collected through a fiber waveguide exhibits spectral and temporal characteristics markedly different from free-space emission, indicating selective coupling of the microcavity to specific excitonic channels. These results provide a quantitative framework for understanding photothermal effects in TMDC-microcavity hybrid systems and offer a versatile approach for all-optical control and probing of thermal states in integrated nanophotonic devices.
Keywords
Cite
@article{arxiv.2605.03316,
title = {Quantitative cavity-enhanced photothermal dynamics in TMDC-integrated ultrahigh-Q microcavities},
author = {Hidetoshi Kanzawa and Ryo Sugano and Hajime Kumazaki and Yuta Takahashi and Shinichi Watanabe and Shun Fujii},
journal= {arXiv preprint arXiv:2605.03316},
year = {2026}
}
Comments
9 pages; 5 figures