Polaron Vibronic Progression Shapes the Optical Response of 2D Perovskites

Author:

Dyksik Mateusz1ORCID,Beret Dorian2ORCID,Baranowski Michal1ORCID,Duim Herman3ORCID,Moyano Sébastien2,Posmyk Katarzyna14ORCID,Mlayah Adnen5,Adjokatse Sampson3,Maude Duncan K.4,Loi Maria Antonietta3ORCID,Puech Pascal2ORCID,Plochocka Paulina14ORCID

Affiliation:

1. Department of Experimental Physics Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wroclaw 50370 Poland

2. CEMES‐UPR8011 CNRS University of Toulouse 29 rue Jeanne Marvig Toulouse 31500 France

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

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

5. LAAS University of Toulouse CNRS, UPS, 7 Avenue du Colonel Roche Toulouse 31031 France

Abstract

AbstractThe optical response of 2D layered perovskites is composed of multiple equally‐spaced spectral features, often interpreted as phonon replicas, separated by an energy Δ ≃ 12 − 40 meV, depending upon the compound. Here the authors show that the characteristic energy spacing, seen in both absorption and emission, is correlated with a substantial scattering response above ≃ 200 cm−1 (≃ 25 meV) observed in resonant Raman. This peculiar high‐frequency signal, which dominates both Stokes and anti‐Stokes regions of the scattering spectra, possesses the characteristic spectral fingerprints of polarons. Notably, its spectral position is shifted away from the Rayleigh line, with a tail on the high energy side. The internal structure of the polaron consists of a series of equidistant signals separated by 25–32 cm−1 (3–4 meV), depending upon the compound, forming a polaron vibronic progression. The observed progression is characterized by a large Huang‐Rhys factor (S > 6) for all of the 2D layered perovskites investigated here, indicative of a strong charge carrier – lattice coupling. The polaron binding energy spans a range ≃ 20–35 meV, which is corroborated by the temperature‐dependent Raman scattering data. The investigation provides a complete understanding of the optical response of 2D layered perovskites via the direct observation of polaron vibronic progression. The understanding of polaronic effects in perovskites is essential, as it directly influences the suitability of these materials for future opto‐electronic applications.

Funder

Narodowe Centrum Nauki

Narodowa Agencja Wymiany Akademickiej

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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