Scalable and Quench-Free Processing of Metal Halide Perovskites in Ambient Conditions

Author:

Cartledge Carsen1,Penukula Saivineeth2ORCID,Giuri Antonella3ORCID,Bakshi Kayshavi1ORCID,Ahmad Muneeza1,Mahaffey Mason2,Li Muzhi1,Zhang Rui1ORCID,Rizzo Aurora3,Rolston Nicholas2ORCID

Affiliation:

1. School for Engineering of Matter, Transport and Energy, Ira A. Fulton Schools of Engineering, Arizona State University, Tempe, AZ 85281, USA

2. School of Electrical, Computer and Energy Engineering, Ira A. Fulton Schools of Engineering, Arizona State University, Tempe, AZ 85281, USA

3. CNR NANOTEC—Institute of Nanotechnology, c/o Campus Ecotekne, University of Salento, Via Monteroni, I-73100 Lecce, Italy

Abstract

With the rise of global warming and the growing energy crisis, scientists have pivoted from typical resources to look for new materials and technologies. Perovskite materials hold the potential for making high-efficiency, low-cost solar cells through solution processing of Earth-abundant materials; however, scalability, stability, and durability remain key challenges. In order to transition from small-scale processing in inert environments to higher throughput processing in ambient conditions, the fundamentals of perovskite crystallization must be understood. Classical nucleation theory, the LaMer relation, and nonclassical crystallization considerations are discussed to provide a mechanism by which a gellan gum (GG) additive—a nontoxic polymeric saccharide—has enabled researchers to produce quality halide perovskite thin-film blade coated in ambient conditions without a quench step. Furthermore, we report on the improved stability and durability properties inherent to these films, which feature improved morphologies and optoelectronic properties compared to films spin-coated in a glovebox with antisolvent. We tune the amount of GG in the perovskite precursor and study the interplay between GG concentration and processability, morphological control, and increased stability under humidity, heat, and mechanical testing. The simplicity of this approach and insensitivity to environmental conditions enable a wide process window for the production of low-defect, mechanically robust, and operationally stable perovskites with fracture energies among the highest obtained for perovskites.

Funder

U.S. Department of Energy’s Office of Energy Efficiency and Renewable Energy

Publisher

MDPI AG

Reference32 articles.

1. Bimolecularly Passivated Interface Enables Efficient and Stable Inverted Perovskite Solar Cells;Liu;Science,2023

2. (2024, January 01). Office of Energy Efficiency & Renewable Energy, Available online: https://www.energy.gov/eere/solar/perovskite-solar-cells.

3. Scalable Fabrication of Metal Halide Perovskite Solar Cells and Modules;Qiu;ACS Energy Lett.,2019

4. Tailoring Solvent Coordination for High-Speed, Room-Temperature Blading of Perovskite Photovoltaic Films;Deng;Sci. Adv.,2019

5. Scalable Fabrication of Perovskite Solar Cells;Li;Nat. Rev. Mater.,2018

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