Electrospun Electroluminescent CsPbBr3 Fibers as Flexible Perovskite Networks for Light‐Emitting Application

Author:

Lê Khan1ORCID,von Toperczer Florian2,Ünlü Feray3ORCID,Paramasivam Gopinath3ORCID,Mathies Florian3ORCID,Nandayapa Edgar3ORCID,List-Kratochvil Emil J. W.34ORCID,Fischer Thomas1ORCID,Lindfors Klas2ORCID,Mathur Sanjay1ORCID

Affiliation:

1. Institute of Inorganic Chemistry University of Cologne Greinstr. 6 50939 Cologne Germany

2. Institute of Physical Chemistry University of Cologne Greinstr. 4-6 50939 Cologne Germany

3. Solution Processing of Hybrid Materials & Devices Helmholtz-Zentrum Berlin für Materialien und Energie GmbH Hahn-Meitner-Platz 1 14109 Berlin Germany

4. Institut für Physik Institut für Chemie IRIS Adlershof Humboldt-Universität zu Berlin Zum Großen Windkanal 2 12489 Berlin Germany

Abstract

Thin‐film perovskite light‐emitting diodes have gained increasing attention in the last 6 years. With the possibility to process the emitting layer from solution, the way for 1D morphology of the semiconductor for flexible devices is paved. Herein, for the first time single‐step fabrication of CsPbBr3@PVP nanofibers in a customized electrospinning process performed under ambient conditions from a water‐based precursor solution is reported. The water‐based approach allows the incorporation of a conductive polymer into the compound fiber by blending the perovskite precursor ink with commercially available PEDOT:PSS dispersion. The results demonstrate electrospun fiber mats which are stable at ambient conditions for at least 5 months and can be utilized in electroluminescence devices. Photoluminescence studies on the perovskite fibers reveal a blueshift of the emission peak compared to thin films possibly due to the generation of nanocrystals of ≈12 nm by in situ nanocrystal pinning as confirmed by transmission electron microscopy. A proof‐of‐concept electrically pumped light‐emitting device is built with the obtained fiber mat. The perovskite nanofibers offer promising applications in flexible and stretchable optoelectronics.

Funder

Deutsche Forschungsgemeinschaft

Universität zu Köln

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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