English

Extreme electron-photon interaction in perovskite glass

Optics 2024-05-13 v1

Abstract

The interaction of light with solids can be dramatically enhanced owing to electron-photon momentum matching. This mechanism is driven by either quantum confinement or long-range structural correlations in media with crystal-liquid duality. In this paper, we address a new strategy based on both phenomena for enhancement of the light-matter interaction in a direct bandgap semiconductor - lead halide perovskite CsPbBr3_3 - by using electric pulse-driven structural disorder. The disordered (glassy) state allows the generation of confined photons, and the formation of an electronic continuum of static/dynamic defect states across the forbidden gap (Urbach bridge). Both mechanisms underlie photon-momentum-enabled electronic Raman scattering (ERS) and single-photon anti-Stokes photoluminescence (PL) under sub-band pump. PL/ERS blinking is discussed to be associated with thermal fluctuations of cross-linked [PbBr6_6]4^{4-} octahedra. Time-delayed synchronization of PL/ERS blinking causes enhanced spontaneous emission at room temperature. Our findings indicate the role of photon momentum in enhanced light-matter interactions in disordered and nanostructured solids.

Keywords

Cite

@article{arxiv.2405.06084,
  title  = {Extreme electron-photon interaction in perovskite glass},
  author = {S. S. Kharintsev and E. I. Battalova and I. A. Matchenya and A. A. Marunchenko and A. P. Pushkarev},
  journal= {arXiv preprint arXiv:2405.06084},
  year   = {2024}
}

Comments

27 pages, 4 figures