Phonon‐Bottleneck Enhanced Exciton Emission in 2D Perovskites

Author:

Thompson Joshua J. P.12ORCID,Dyksik Mateusz3ORCID,Peksa Paulina34,Posmyk Katarzyna34ORCID,Joki Ambjörn5,Perea‐Causin Raul5,Erhart Paul5,Baranowski Michał3ORCID,Loi Maria Antonietta6,Plochocka Paulina34ORCID,Malic Ermin1

Affiliation:

1. Department of Physics Philipps‐Universität Marburg Renthof 7 35032 Marburg Germany

2. Department of Materials Science and Metallurgy University of Cambridge Cambridge CB3 0FS UK

3. Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wroclaw 50‐370 Poland

4. Laboratoire National des Champs Magnétiques Intenses, EMFL, CNRS UPR 3228, Université Grenoble Alpes, Université Toulouse, Université Toulouse 3, INSA‐T Grenoble 38042 , Toulouse 31400 France

5. Department of Physics Chalmers University of Technology Gothenburg 412 96 Sweden

6. Zernike Institute for Advanced Materials University of Groningen Nijenborgh 4 Groningen 9747 AG The Netherlands

Abstract

AbstractLayered halide perovskites exhibit remarkable optoelectronic properties and technological promise, driven by strongly bound excitons. The interplay of spin‐orbit and exchange coupling creates a rich excitonic landscape, determining their optical signatures and exciton dynamics. Despite the dark excitonic ground state, surprisingly efficient emission from higher‐energy bright states has puzzled the scientific community, sparking debates on relaxation mechanisms. Combining low‐temperature magneto‐optical measurements with sophisticated many‐particle theory, the origin of the bright exciton emission in perovskites is elucidated by tracking the thermalization of dark and bright excitons under a magnetic field. The unexpectedly high emission is clearly attributed to a pronounced phonon‐bottleneck effect, considerably slowing down the relaxation toward the energetically lowest dark states. It is demonstrated that this bottleneck can be tuned by manipulating the bright‐dark energy splitting and optical phonon energies, offering valuable insights and strategies for controlling exciton emission in layered perovskite materials that is crucial for optoelectronics applications.

Funder

Deutsche Forschungsgemeinschaft

Narodowym Centrum Nauki

Publisher

Wiley

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