4.8 Article

Multi-Length Scale Structure of 2D/3D Dion-Jacobson Hybrid Perovskites Based on an Aromatic Diammonium Spacer

期刊

SMALL
卷 18, 期 5, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202104287

关键词

cathodoluminescence; Dion-Jacobson phases; hybrid perovskites; solid-state NMR spectroscopy; structure elucidation

资金

  1. Swiss National Science Foundation [200020_178860, 200020_169695, 193174]
  2. Ecole Polytechnique Federale de Lausanne
  3. Swiss National Science Foundation (SNF) [200020_169695] Funding Source: Swiss National Science Foundation (SNF)

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This study investigates the structure of DJ iodoplumbates based on 1,4-phenylenedimethanammonium (PDMA) and characterizes them using various techniques. It is found that the atomic-level structure of these iodoplumbate homologues is ordered and similar for different synthesis methods, with lower homologues present in thin films. The micron-scale microstructure of the films shows a mixture of different layered homologues that are well distributed, with layer edge states dominating the emission.
Dion-Jacobson (DJ) iodoplumbates based on 1,4-phenylenedimethanammonium (PDMA) have recently emerged as promising light absorbers for perovskite solar cells. While PDMA is one of the simplest aromatic spacers potentially capable of forming a DJ structure based on (PDMA)A(n)(-1)Pb(n)I(3)(n)(+1) composition, the crystallographic proof has not been reported so far. Single crystal structure of a DJ phase based on PDMA is presented and high-field solid-state NMR spectroscopy is used to characterize the structure of PDMA-based iodoplumbates prepared as thin films and bulk microcrystalline powders. It is shown that their atomic-level structure does not depend on the method of synthesis and that it is ordered and similar for all iodoplumbate homologues. Moreover, the presence of lower (n) homologues in thin films is identified through UV-Vis spectroscopy, photoluminescence spectroscopy, and X-ray diffraction measurements, complemented by cathodoluminescence mapping. A closer look using cathodoluminescence shows that the micron-scale microstructure corresponds to a mixture of different layered homologues that are well distributed throughout the film and the presence of layer edge states which dominate the emission. This work therefore determines the formation of DJ phases based on PDMA as the spacer cation and reveals their properties on a multi-length scale, which is relevant for their application in optoelectronics.

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