Lattice Engineering via Transition Metal Ions for Boosting Photoluminescence Quantum Yields of Lead‐Free Layered Double Perovskite Nanocrystals

Author:

Liu Maning1234ORCID,Matta Sri Kasi56,Said Tarek Al7,Liu Jiatu8,Matuhina Anastasia4,Al‐Anesi Basheer4,Ali‐Löytty Harri9,Lahtonen Kimmo10,Russo Slavy P.11,Vivo Paola4

Affiliation:

1. Centre for Analysis and Synthesis Department of Chemistry Lund University P.O. Box 124 Lund 22100 Sweden

2. Wallenberg Initiative Materials Science for Sustainability Department of Chemistry Lund University Lund 22100 Sweden

3. NanoLund Lund University Lund 22100 Sweden

4. Hybrid Solar Cells Faculty of Engineering and Natural Sciences Tampere University P.O. Box 541 Tampere FI‐33014 Finland

5. JSPS International Research Fellow (Center for Computational Sciences) University of Tsukuba Tsukuba 305‐8577 Japan

6. Australian Research Council (ARC) Centre of Excellence for Exciton Science RMIT University Melbourne 3000 Australia

7. Department Spins in Energy Conversion and Quantum Information Science Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Albert‐Einstein‐Str. 16 12489 Berlin Germany

8. MAX IV Laboratory Fotongatan 2 Lund 224 84 Sweden

9. Surface Science Group Faculty of Engineering and Natural Sciences Tampere University P.O. Box 692 Tampere FI‐33014 Finland

10. Faculty of Engineering and Natural Sciences Tampere University P.O. Box 692 Tampere FI‐33014 Finland

11. Theoretical Condensed Matter Physics Laboratory Australian Research Council (ARC) Centre of Excellence for Exciton Science RMIT University Melbourne 3000 Australia

Abstract

AbstractLead‐free layered double perovskite nanocrystals (NCs), i.e., Cs4M(II)M(III)2Cl12, have recently attracted increasing attention for potential optoelectronic applications due to their low toxicity, direct bandgap nature, and high structural stability. However, the low photoluminescence quantum yield (PLQY, <1%) or even no observed emissions at room temperature have severely blocked the further development of this type of lead‐free halide perovskites. Herein, two new layered perovskites, Cs4CoIn2Cl12 (CCoI) and Cs4ZnIn2Cl12 (CZnI), are successfully synthesized at the nanoscale based on previously reported Cs4CuIn2Cl12 (CCuI) NCs, by tuning the M(II) site with different transition metal ions for lattice tailoring. Benefiting from the formation of more self‐trapped excitons (STEs) in the distorted lattices, CCoI and CZnI NCs exhibit significantly strengthened STE emissions toward white light compared to the case of almost non‐emissive CCuI NCs, by achieving PLQYs of 4.3% and 11.4% respectively. The theoretical and experimental results hint that CCoI and CZnI NCs possess much lower lattice deformation energies than that of reference CCuI NCs, which are favorable for the recombination of as‐formed STEs in a radiative way. This work proposes an effective strategy of lattice engineering to boost the photoluminescent properties of lead‐free layered double perovskites for their future warm white light‐emitting applications.

Funder

Jane ja Aatos Erkon Säätiö

Centre of Excellence in Exciton Science

Japan Society for the Promotion of Science London

Suomen Kulttuurirahasto

Knut och Alice Wallenbergs Stiftelse

Kungliga Fysiografiska Sällskapet i Lund

Publisher

Wiley

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