Research data for: understanding and exploiting interfacial interactions between phosphonic acid functional groups and co-evaporated perovskites

Abstract: Interfacial engineering has fueled recent development of p-i-n perovskite solar cells (PSCs), with self-assembled monolayer-based hole-transport layers (SAM-HTLs) enabling almost lossless contacts for solution-processed PSCs, resulting in the highest achieved power conversion efficiency (PCE) to date. Substrate interfaces are particularly crucial for the growth and quality of co-evaporated PSCs. However, adoption of SAM-HTLs for co-evaporated perovskite absorbers is complicated by the underexplored interaction of such perovskites with phosphonic acid functional groups. In this work, we highlight how exposed phosphonic acid functional groups impact the initial phase and final bulk crystal structures of co-evaporated perovskites and their resultant PCE. The explored surface interaction is mediated by hydrogen bonding with interfacial iodine, leading to increased formamidinium iodide adsorption, persistent changes in perovskite structure, and stabilization of bulk α-FAPbI3, hypothesized as being due to kinetic trapping. Our results highlight the potential of exploiting substrates to increase control of co-evaporated perovskite growth. TechnicalRemarks: Contains the raw data for all data that is included in the Figures as published in the related journal article.

Cite this as

Feeney, Thomas, Petry, Julian, Torche, Abderrezak, Hauschild, Dirk, Hacene, Benjamin, Wansorra, Constantin, Diercks, Alexander, Ernst, Michelle, Weinhardt, Lothar, Heske, Clemens, Gryn'ova, Ganna, Paetzold, Ulrich W., Fassl, Paul (2024). Dataset: Research data for: understanding and exploiting interfacial interactions between phosphonic acid functional groups and co-evaporated perovskites. https://doi.org/10.35097/1946

DOI retrieved: 2024

Additional Info

Field Value
Imported on November 28, 2024
Last update November 28, 2024
License CC BY 4.0 Attribution
Source https://doi.org/10.35097/1946
Author Feeney, Thomas
Given Name Thomas
Family Name Feeney
More Authors
Petry, Julian
Torche, Abderrezak
Hauschild, Dirk
Hacene, Benjamin
Wansorra, Constantin
Diercks, Alexander
Ernst, Michelle
Weinhardt, Lothar
Heske, Clemens
Gryn'ova, Ganna
Paetzold, Ulrich W.
Fassl, Paul
Source Creation 2024
Publishers
Karlsruhe Institute of Technology
Production Year 2023
Publication Year 2024
Subject Areas
Name: Engineering