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  4. Elimination of Nanoscale Phase Impurities for Intrinsically Stable Formamidinium-Rich Perovskite Films and Devices
 
doctoral thesis

Elimination of Nanoscale Phase Impurities for Intrinsically Stable Formamidinium-Rich Perovskite Films and Devices

Othman, Mostafa Rabie Shlaly Bahr  
2026

The work documented in this thesis concerns the fundamental understanding of the intrinsic stabilization mechanisms afforded by A-site cation compositional tuning in state-of-the-art formamidinium (FA)-rich perovskite absorbers and devices. Photovoltaic (PV) devices fabricated from FA-rich perovskite films exhibit certified power conversion efficiencies (PCEs) exceeding 26% in single-junction devices and 34% in tandem configurations. Guaranteeing minimal performance losses for these highly efficient devices under real-world operational conditions is paramount to the successful deployment of this emerging technology. A nanoscopic fundamental understanding of the local structural features that seed instabilities in these perovskite absorbers is essential for mitigating device degradation. This thesis presents advanced, low-dose electron microscopy investigations coupled with sophisticated optoelectronic characterizations in different leading FA-rich perovskite formulations. In doing so, the goal is to study the structure-property relationships in these compositions and elucidate their impact on the resulting device performance and long-term operational stability.

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Type
doctoral thesis
DOI
10.5075/epfl-thesis-11658
Author(s)
Othman, Mostafa Rabie Shlaly Bahr  
Advisors
Hessler-Wyser, Aïcha  
•
Wolff, Christian Michael  
Jury

Prof. Frank Nüesch (président) ; Dr Aïcha Hessler-Wyser, Dr Christian Michael Wolff (directeurs) ; Prof. Cristina Benea-Chelmus, Prof. Monica Morales-Masis, Prof. Stefan Weber (rapporteurs)

Date Issued

2026

Publisher

EPFL

Publisher place

Lausanne

Public defense year

2026-01-28

Thesis number

11658

Total of pages

226

Subjects

perovskite

•

photovoltaics

•

electron microscopy

•

stability

•

stacking faults

•

scalability

•

solar cells.

EPFL units
PV-LAB  
Faculty
STI  
School
IEM  
Doctoral School
EDPO  
Available on Infoscience
January 22, 2026
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/258434
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