Kędziora Mateusz, Król Mateusz, Kapuściński Piotr, Sigurðsson Helgi, Mazur Rafał, Piecek Wiktor, Szczytko Jacek, Matuszewski Michał, Opala Andrzej, Piętka Barbara
Institute of Experimental Physics, Faculty of Physics, University of Warsaw, ul. Pasteura 5, PL-02-093 Warsaw, Poland.
ARC Centre of Excellence in Future Low-Energy Electronics Technologies and Department of Quantum Science and Technology, Research School of Physics, The Australian National University, Canberra, ACT, 2601, Australia.
Nanophotonics. 2024 May 15;13(14):2491-2500. doi: 10.1515/nanoph-2023-0830. eCollection 2024 Jun.
Exploring the non-Hermitian properties of semiconductor materials for optical applications is at the forefront of photonic research. However, the selection of appropriate systems to implement such photonic devices remains a topic of debate. In this work, we demonstrate that a perovskite crystal, characterized by its easy and low-cost manufacturing, when placed between two distributed Bragg reflectors with an air gap, can form a natural double microcavity. This construction shows promising properties for the realisation of novel, tunable non-Hermitian photonic devices through strong light-matter coupling. We reveal that such a system exhibits double-coupled polariton modes with dispersion including multiple inflection points. Owing to its non-Hermiticity, our system exhibits nonreciprocal properties and allows for the observation of exceptional points. Our experimental studies are in agreement with the theoretical analysis based on coupled mode theory and calculations based on transfer matrix method.
探索用于光学应用的半导体材料的非厄米特性是光子学研究的前沿领域。然而,选择合适的系统来实现此类光子器件仍是一个有争议的话题。在这项工作中,我们证明了一种钙钛矿晶体,其特点是易于制造且成本低廉,当置于两个带有气隙的分布式布拉格反射器之间时,可以形成一个天然的双微腔。这种结构对于通过强光-物质耦合实现新型、可调谐的非厄米光子器件具有良好的特性。我们发现这样的系统表现出具有包括多个拐点的色散的双耦合极化激元模式。由于其非厄米性,我们的系统表现出非互易特性,并允许观察例外点。我们的实验研究与基于耦合模理论的理论分析以及基于传输矩阵法的计算结果一致。