Deciphering Structure and Charge Carrier Behavior in Reduced‐Dimensional Perovskites

Author:

Sun Kun1,Guo Renjun23,Liu Shangpu4,Guo Dengyang5,Jiang Xiongzhuo1,Huber Linus F.1,Liang Yuxin1,Reus Manuel A.1,Li Zerui1,Guan Tianfu1,Zhou Jungui6,Schwartzkopf Matthias6,Stranks Samuel D.5,Deschler Felix4,Müller‐Buschbaum Peter1ORCID

Affiliation:

1. TUM School of Natural Sciences Department of Physics Chair for Functional Materials Technical University of Munich James‐Franck‐Str. 1 85748 Garching Germany

2. Laboratory of Zhongyuan Light School of Physics Zhengzhou University 100 Kexue Avenue Zhengzhou 450001 China

3. Institute of Microstructure Technology Karlsruhe Institute of Technology Hermann‐von‐Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

4. Physikalisch‐Chemisches Institut Universität Heidelberg Im Neuenheimer Feld 229 69120 Heidelberg Germany

5. Chemical Engineering and Biotechnology University of Cambridge Cambridge CB3 0AS UK

6. Deutsches Elektronen‐Synchrotron DESY Notkestraße 85 22607 Hamburg Germany

Abstract

AbstractReduced‐dimensional perovskites (RDPs) have advanced perovskite optoelectronic devices due to their tunable energy landscape, structure, and orientation. However, the origin of structural and photophysical property changes when moving from low‐dimensional to high‐dimensional RDPs remains to be understood. This study systematically reveals structural and photophysical properties of slot‐die‐coated Dion‐Jacobson (DJ) and Ruddlesden‐Popper (RP) RDPs with different dimensionalities. RP RDPs with lower dimensionality (= 2) exhibit a dominant = 2 phase, preferential out‐of‐plane orientation, and longer charge carrier lifetime compared with DJ RDPs. In addition, the formation kinetics of RDPs with higher dimensionality (= 4) are unraveled by in situ X‐ray scattering, showing the favorable formation of the lower‐n phase in RP RDPs. The formation of these lower‐n phases is thermodynamically and stoichiometrically favored, while these phases are likely in the form of an “intermediate phase” which bridges the 3D‐like and lower‐n phases in DJ RDPs. DJ RDPs with higher dimensionality demonstrate comparable phase purity, preferential orientation, spatially vertical phase homogeneity, and longer charge carrier lifetime. As such, DJ‐based perovskite solar cells (PSCs) (= 4) demonstrate better photostability under operational conditions than RP‐based PSCs. Thus, the work paves the way for the utilization of RDPs to upscale PSCs.

Funder

Deutsche Forschungsgemeinschaft

European Research Council

Bayerisches Staatsministerium für Bildung und Kultus, Wissenschaft und Kunst

Publisher

Wiley

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