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arxiv: 2606.00682 · v1 · pith:QMZOSJHSnew · submitted 2026-05-30 · ❄️ cond-mat.mtrl-sci · cond-mat.mes-hall· physics.optics

A Visible-Frequency Excitonic Reststrahlen Band in (PEA)₂PbI₄ Slabs

classification ❄️ cond-mat.mtrl-sci cond-mat.mes-hallphysics.optics
keywords excitonicslabsbanddielectricresponsereststrahlendrivenexcitons
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Layered halide perovskites host exceptionally strong excitons, whose optical signatures are usually interpreted as absorptive resonances on a smooth dielectric background. Strong excitons, however, can also reshape the dielectric response itself and drive the real permittivity negative, opening a reflective band: the visible, excitonic analogue of an infrared Reststrahlen band. Whether bare (PEA)$_2$PbI$_4$ slabs reach this regime has remained unclear. Here we show that low-temperature transmission of (PEA)$_2$PbI$_4$ slabs, driven by the intralayer-exciton manifold, evolves with increasing thickness from an excitonic dip into a broad near-zero-transmission interval with compressed Fabry-P\'erot-like fringes. Transfer-matrix analysis with an effective Lorentz-oscillator dielectric response reproduces this crossover, reconstructs a finite negative-Re($\varepsilon$) window, and implies near-ultrastrong exciton-photon coupling. Calculated field maps show suppressed in-plane field penetration within this interval and a driven longitudinal response near the high-energy ($\varepsilon=0$) edge. These results identify (PEA)$_2$PbI$_4$ slabs as a cavity-free visible-frequency excitonic Reststrahlen material.

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