Squeezing the Threshold of Metal‐Halide Perovskite Micro‐Crystal Lasers Grown by Solution Epitaxy

Author:

Zhou Shuyu12,Rehm Viktor12,Afify Hany A.13ORCID,Han Yufei12,Korczak Jędrzej45,Szczerbakow Andrzej4ORCID,Story Tomasz45ORCID,Peng Zijian1,These Albert1ORCID,Barabash Anastasia1ORCID,Osvet Andres1,Brabec Christoph J.12ORCID,Götz Klaus678ORCID,Unruh Tobias678ORCID,Hilpert Felix9ORCID,Brummel Olaf9,Libuda Jörg9ORCID,Heiss Wolfgang12ORCID

Affiliation:

1. Institute of Materials for Electronics and Energy Technology (i‐MEET) Department of Materials Science and Engineering Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Martensstrasse 7 91058 Erlangen Germany

2. Institute‐Materials for Electronics and Energy Technology (i‐MEET) Department of Materials Science and Engineering Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Energy Campus Nürnberg, Fürtherstraße 250 90429 Nürnberg Germany

3. Department of Laser Sciences and Interactions National Institute of Laser Enhanced Sciences (NILES) Cairo University Giza 12613 Egypt

4. Institute of Physics Polish Academy of Sciences Aleja Lotnikow 32/46 Warsaw 02‐668 Poland

5. International Research Centre MagTop Institute of Physics Polish Academy of Sciences Aleja Lotnikow 32/46 Warsaw 02‐668 Poland

6. Institute for Crystallography and Structural Physics (ICSP) Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Staudtstr. 3 91058 Erlangen Germany

7. Center for Nanoanalysis and Electron Microscopy Friedrich‐Alexander University of Erlangen‐Nuremberg Cauerstraße 3 91058 Erlangen Germany

8. Interdisciplinary Center for Nanostructured Films (IZNF) Friedrich‐Alexander University of Erlangen‐ Nuremberg, Cauerstraße 3 91058 Erlangen Germany

9. Interface Research and Catalysis ECRC Friedrich‐Alexander‐Universität Erlangen‐Nürnberg Egerlandstraße 3 91058 Erlangen Germany

Abstract

AbstractMetal halide perovskite semiconductors have demonstrated remarkable progress not only in photovoltaics and X‐ray detection but also in laser technologies. Particularly appealing is the simplicity with which micro‐crystallites can be epitaxially grown, thereby forming micro‐resonators suitable for lasing. Here, the laser threshold is optimized by selecting excitation laser parameters and by improving material quality. The latter process is conducted for formamidinium lead tribromide, emitting in the green spectral range. Depending on the growth method and parameters, the sizes of the micro‐resonators can be tuned between ≈3 and 23 micrometers. Under laser excitation systematically lower thresholds are observed for micro‐resonators in the 4–7 micrometer size range, than for larger ones, irrespective of growth method. Among three optimized growth methods, epitaxial growth via antisolvent vapor‐assisted crystallization exhibits the smallest threshold powers, indicating the highest material quality. This conclusion is supported by hyperspectral microscopic luminescence imaging and by transient photoluminescence. The best laser structures exhibit record threshold powers for epitaxially grown perovskites, indicating that the selected antisolvent vapor epitaxial growth holds great promises also for other perovskite materials.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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