An Integrated Deposition and Passivation Strategy for Controlled Crystallization of 2D/3D Halide Perovskite Films

Author:

Kodalle Tim12,Byranvand Mahdi Malekshahi34,Goudreau Meredith1,Das Chittaranjan34,Roy Rajarshi3,Kot Małgorzata5,Briesenick Simon16,Zohdi Mohammadreza3,Rai Monika3,Tamura Nobumichi2,Flege Jan Ingo5,Hempel Wolfram7,Sutter‐Fella Carolin M.1,Saliba Michael34ORCID

Affiliation:

1. Molecular Foundry Lawrence Berkeley National Laboratory 1 Cyclotron Road Berkeley California 94720 USA

2. Advanced Light Source Lawrence Berkeley National Laboratory 1 Cyclotron Road Berkeley California 94720 USA

3. Institute for Photovoltaics University of Stuttgart Pfaffenwaldring 47 70569 Stuttgart Germany

4. Helmholtz Young Investigator Group FRONTRUNNER IEK5‐Photovoltaik Forschungszentrum Jülich 52425 Jülich Germany

5. Chair of Applied Physics and Semiconductor Spectroscopy Brandenburg University of Technology Cottbus‐Senftenberg 03046 Cottbus Germany

6. Department of Physics, Ernest Rutherford Physics Building McGill University 3600 Rue University Montrèal QC H3A 2T8 Canada

7. Zentrum für Sonnenenergie‐ und Wasserstoff‐Forschung Baden‐Württemberg (ZSW) 70563 Stuttgart Germany

Abstract

AbstractThis work introduces a simplified deposition procedure for multidimensional (2D/3D) perovskite thin films, integrating a phenethylammonium chloride (PEACl)‐treatment into the antisolvent step when forming the 3D perovskite. This simultaneous deposition and passivation strategy reduces the number of synthesis steps while simultaneously stabilizing the halide perovskite film and improving the photovoltaic performance of resulting solar cell devices to 20.8%. Using a combination of multimodal in situ and additional ex situ characterizations, it is demonstrated that the introduction of PEACl during the perovskite film formation slows down the crystal growth process, which leads to a larger average grain size and narrower grain size distribution, thus reducing carrier recombination at grain boundaries and improving the device's performance and stability. The data suggests that during annealing of the wet film, the PEACl diffuses to the surface of the film, forming hydrophobic (quasi‐)2D structures that protect the bulk of the perovskite film from humidity‐induced degradation.

Funder

Deutsche Forschungsgemeinschaft

U.S. Department of Energy

Office of Science

Basic Energy Sciences

University of California

Albert Ellis Institute

Bundesministerium für Wirtschaft und Energie

European Research Council

Publisher

Wiley

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