Dynamics of self-hybridized exciton–polaritons in 2D halide perovskites

Author:

Anantharaman Surendra B.,Lynch Jason,Stevens Christopher E.ORCID,Munley Christopher,Li ChentaoORCID,Hou JinORCID,Zhang Hao,Torma Andrew,Darlington ThomasORCID,Coen Francis,Li Kevin,Majumdar ArkaORCID,Schuck P. James,Mohite Aditya,Harutyunyan Hayk,Hendrickson Joshua R.ORCID,Jariwala DeepORCID

Abstract

AbstractExcitons, bound electron–hole pairs, in two-dimensional hybrid organic inorganic perovskites (2D HOIPs) are capable of forming hybrid light-matter states known as exciton-polaritons (E–Ps) when the excitonic medium is confined in an optical cavity. In the case of 2D HOIPs, they can self-hybridize into E–Ps at specific thicknesses of the HOIP crystals that form a resonant optical cavity with the excitons. However, the fundamental properties of these self-hybridized E–Ps in 2D HOIPs, including their role in ultrafast energy and/or charge transfer at interfaces, remain unclear. Here, we demonstrate that >0.5 µm thick 2D HOIP crystals on Au substrates are capable of supporting multiple-orders of self-hybridized E–P modes. These E–Ps have high Q factors (>100) and modulate the optical dispersion for the crystal to enhance sub-gap absorption and emission. Through varying excitation energy and ultrafast measurements, we also confirm energy transfer from higher energy E–Ps to lower energy E–Ps. Finally, we also demonstrate that E–Ps are capable of charge transport and transfer at interfaces. Our findings provide new insights into charge and energy transfer in E–Ps opening new opportunities towards their manipulation for polaritonic devices.

Funder

United States Department of Defense | United States Army | U.S. Army Research, Development and Engineering Command | Army Research Laboratory

United States Department of Defense | United States Air Force | AFMC | Air Force Office of Scientific Research

National Science Foundation

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

United States Department of Defense | United States Air Force | AFMC | Air Force Research Laboratory

DOE | SC | Basic Energy Sciences

Publisher

Springer Science and Business Media LLC

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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