Reduced Energetic Disorders in Dion–Jacobson Perovskites for Efficient and Spectral Stable Blue LEDs

Author:

Seo Jisung1,Wang Kang1ORCID,Coffey Aidan H.2,He Guiying34,Yang Hanjun1,Lee Yoon Ho1,Ma Ke1,Sun Jiaonan1,Park Jee Yung1,Zhao Han1,Yuan Chongli1,Zhu Chenhui2,Sfeir Matthew Y.34,Dou Letian15ORCID

Affiliation:

1. Davidson School of Chemical Engineering Purdue University West Lafayette IN 47907 USA

2. Advanced Light Source Lawrence Berkeley National Laboratory Berkeley CA 94720 USA

3. Department of Physics Graduate Center City University of New York New York NY 10016 USA

4. Photonics Initiative Advanced Science Research Center City University of New York New York NY 10031 USA

5. Birck Nanotechnology Center Purdue University West Lafayette IN 47907 USA

Abstract

AbstractMetal halide perovskites have witnessed great success in green, red, and near‐infrared light‐emitting diodes (LEDs), yet blue LEDs still lag behind. Reducing undesired energetic disorders – broad n‐phases and halide segregation – is considered as the most critical strategy to further improve the performances. Here, the study reports a newly designed and synthesized di‐ammonium ligand with rigid π‐conjugated rings and additional methyl groups to construct Dion–Jacobson (DJ) structure. Augmented coordination from the extra ammonium site and increased effective bulkiness from methyl groups lead to better distribution control over conventional mono‐ammonium ligands. This enhances the radiative recombination of blue emissions in the film with homogeneous energy landscape and improved surface morphology, as evidenced by a series of imaging and mapping techniques. As a result, it demonstrates DJ perovskite LEDs (PeLEDs) with peak external quantum efficiencies of ≈4% at 484 nm and ≈11% at 494 nm, which are among the top reported for pure DJ phase‐based PeLEDs in the corresponding wavelength regions. The results deepen the understanding of regulating energetic disorders in perovskite materials via molecular engineering.

Funder

National Science Foundation

Publisher

Wiley

Subject

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

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