Strong exciton-photon coupling in self-hybridized organic–inorganic lead halide perovskite microcavities

Author:

Tahir Zeeshan1,Jung Jin-Woo2ORCID,Rashid Mamoon Ur1,Kim Sungdo1,Dang Dinh Khoi13,Kang Jang-Won4,Cho Chang-Hee2,Jang Joon I.5,Kim Yong Soo1ORCID

Affiliation:

1. Department of Semiconductor Physics and Energy Harvest Storage Research Center , University of Ulsan , Ulsan 44610 , South Korea

2. Department of Physics and Chemistry , Daegu Gyeongbuk Institute of Science & Technology (DGIST) , Daegu 42988 , South Korea

3. Faculty of Chemical and Food Technology , Ho Chi Minh City University of Technology and Education , Ho Chi Minh City , Vietnam

4. Department of Semiconductor and Applied Physics , Mokpo National University , Muan 58554 , South Korea

5. Department of Physics , Sogang University , Seoul 04017 , South Korea

Abstract

Abstract Controlling coherent light–matter interactions in semiconductor microcavities is at the heart of the next-generation solid-state polaritonic devices. Organic–inorganic hybrid perovskites are potential materials for room-temperature polaritonics owing to their high exciton oscillator strengths and large exciton binding energies. Herein, we report on strong exciton-photon coupling in the micro-platelet and micro-ribbon shaped methylammonium lead bromide single crystals. Owing to high crystallinity and large refractive index, the as-grown perovskite microcrystals serve as self-hybridized optical microcavities along different orientations due to their distinct physical dimensionalities. In this regard, the perovskite micro-platelet forms a simple Fabry–Perot microcavity in out-of-plane orientation, while the micro-ribbon functions as a Fabry–Perot type waveguide microcavity within the plane of the perovskite sample. Consequently, excitons in these microcavities strongly interact with their corresponding uncoupled cavity modes, yielding multimode exciton-polaritons with Rabi splitting energies ∼205 and 235 meV for micro-platelet and micro-ribbon geometry, respectively. Furthermore, micro-ribbon geometry displays Young’s double-slit-like interference patterns, which together with the numerical simulation readily reveals the parity and the mode order of the uncoupled cavity modes. Thus, our results not only shed light on strong exciton-photon coupling in various morphologies of methylammonium lead bromide microcrystals but also open an avenue for advanced polaritonic devices.

Funder

National Research Foundation of Korea

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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