Enhanced Particle‐to‐Particle Interaction of Tin Oxide Electron Transporter Layer for Scalable Flexible Perovskite Solar Cells

Author:

Kokaba Mohammad Reza1,Ahmed Yameen1,Yeddu Vishal2,Zhang Dongyang2,Moazzezi Parinaz1,Kamraninejad Vahid2,Dayneko Sergey2,Reinecke Sean B.2,Amaro Augusto2,Villarejo Bohores3,Shyla Anjusree3,Malek Sardar4,Saidaminov Makhsud I.125ORCID

Affiliation:

1. Department of Electrical & Computer Engineering University of Victoria 3800 Finnerty Road Victoria British Columbia V8P 5C2 Canada

2. Department of Chemistry University of Victoria 3800 Finnerty Road Victoria British Columbia V8P 5C2 Canada

3. Research and Development Division Solaires Enterprises Inc. 2610 Douglas St. Victoria British Columbia V8T 4M1 Canada

4. Department of Civil Engineering University of Victoria 3800 Finnerty Road Victoria British Columbia V8P 5C2 Canada

5. Centre for Advanced Materials and Related Technologies (CAMTEC) University of Victoria 3800 Finnerty Road Victoria British Columbia V8P 5C2 Canada

Abstract

Perovskite solar cells (PSCs) have exceeded 26% efficiency. One attribute of PSCs is their printability at relatively low temperatures, particularly advantageous for flexible solar cells. However, developing efficient, fully printable flexible PSCs on rough and soft plastic substrates remains a challenge. Herein, efficient flexible PSCs fabricated by only scalable methods in ambient conditions are reported. First, the source of the issue in fabricating flexible PSCs—the presence of charge carrier shorting pathways within electron‐transport layer (ETL) due to incomplete coverage of surface of flexible substrates—is identified. To address this challenge, the ETL deposition ink is modified with a phase‐transfer catalyst, often used in synthetic organic chemistry. Dynamic light scattering and nuclear‐magnetic resonance studies show that the catalyst enhances ETL particle‐to‐particle interaction in the ink, eventually leading to conformal coverage of rough flexible substrates. As a result, a power conversion efficiency of 17.6% for all‐scalable flexible n–i–p‐structured PSCs based on methylammonium lead iodide (MAPbI3) is demonstrated, among the highest reported to date for fully scalable flexible PSCs, all fabricated in ambient air.

Funder

Natural Sciences and Engineering Research Council of Canada

Canada Research Chairs

Canada Foundation for Innovation

British Columbia Knowledge Development Fund

Publisher

Wiley

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