Mechanical scanning probe lithography of perovskites for fabrication of high-Q planar polaritonic cavities

Author:

Glebov N.1ORCID,Masharin M.1ORCID,Borodin B.2ORCID,Alekseev P.2ORCID,Benimetskiy F.3ORCID,Makarov S.14ORCID,Samusev A.15ORCID

Affiliation:

1. ITMO University, School of Physics and Engineering 1 , St. Petersburg 197101, Russia

2. Ioffe Institute 2 , Saint Petersburg 194021, Russia

3. Department of Physics and Astronomy, University of Sheffield 3 , Sheffield S3 7RH, United Kingdom

4. Qingdao Innovation and Development Center, Harbin Engineering University 4 , Qingdao, Shandong 266000, China

5. Experimentelle Physik 2, Technische Universität Dortmund 5 , Dortmund 44227, Germany

Abstract

Exciton–polaritons are unique quasiparticles with hybrid properties of an exciton and a photon, opening ways to realize ultrafast strongly nonlinear systems and inversion-free lasers based on Bose–Einstein polariton condensation. However, the real-world applications of polariton systems are still limited due to the temperature operation and costly fabrication techniques for both exciton materials and photon cavities. 2D perovskites represent one of the most prospective platforms for the realization of strong light-matter coupling since they support room-temperature exciton states with large oscillator strength and can simultaneously be used for fabrication of planar photon cavities with strong field localization due to the high refractive index of the material. In this work, we demonstrate the affordable mechanical scanning probe lithography method for research purposes and for the realization of room-temperature exciton–polariton systems based on 2D perovskite (PEA)2PbI4 with the Rabi splitting exceeding 200 meV. By the precise control of lithography parameters, we broadly adjust the exciton–polariton dispersion and, in particular, vary the radiative coupling of polaritonic modes to the free space. Our findings represent a versatile approach to fabrication of planar high-quality perovskite-based photonic cavities supporting the strong light-matter coupling regime for the development of on-chip all-optical active and nonlinear polaritonic devices.

Funder

Russian Science Foundation

Deutsche Forschungsgemeinschaft

Mercator Research Center Ruhr

TU Dortmund core funds

Ministry of Science and Higher Education of the Russian Federation

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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