TY - JOUR
T1 - Facile surface modification process of Sn-doped In2O3 electron transport layer for enhanced perovskite solar cell performance
AU - Ramanathan, Ramarajan
AU - Zinigrad, Michael
AU - Arjunan, K.
AU - Ravichandran, K.
AU - Barshilia, Harish C.
AU - Chandra Mallik, Ramesh
N1 - Publisher Copyright:
© 2025
PY - 2025/6/1
Y1 - 2025/6/1
N2 - Perovskite solar cell (PSC) devices have achieved a tremendous amount of attention because of their facile fabrication process, high efficiency, and cost-effectiveness. This research mainly focuses on providing a solvent-based surface modification process of Tin-doped Indium Oxide (Sn-doped In2O3; Sn-In2O3) based electron transport layer (ETL) for PSC's fabrication. The ETL layer should exhibit good optical transparency and electrical conductivity in planner-structured PSC devices for better performance. Pristine and surface-modified Sn-In2O3 thin films-based ETLs were prepared by facile spray pyrolysis technique. A solvent-based surface modification process has been carried out to control the grain boundary effect on the charge transfer process of Sn-In2O3 film. The surface modification process's impact on the structural, surface morphology, surface charge state, optical, and electrical properties of Sn-In2O3 thin films was used to investigate the power conversion efficiency (PCE) of the developed PSCs. The glancing angle X-ray diffraction (GAXRD), X-ray photoelectron spectroscopy (XPS), Field Emission Scanning Electron Microscopy (FE-SEM), AFM, Ultra-Violet visible and Near Infra-Red (UV–Vis–NIR and Hall measurements confirm the significant variation of Sn-In2O3 films based on the surface modification process. A surface-modified Sn-In2O3 thin film-based ETL-used PSC device demonstrated a maximum efficiency of 14.3 %, whereas a pristine-based Sn-In2O3 thin film showed a maximum efficiency of 7.2 %. The results obtained indicate that surface-modified spray-deposited Sn-In2O3 thin film can be a suitable candidate to serve as an ETL for PSC device fabrication.
AB - Perovskite solar cell (PSC) devices have achieved a tremendous amount of attention because of their facile fabrication process, high efficiency, and cost-effectiveness. This research mainly focuses on providing a solvent-based surface modification process of Tin-doped Indium Oxide (Sn-doped In2O3; Sn-In2O3) based electron transport layer (ETL) for PSC's fabrication. The ETL layer should exhibit good optical transparency and electrical conductivity in planner-structured PSC devices for better performance. Pristine and surface-modified Sn-In2O3 thin films-based ETLs were prepared by facile spray pyrolysis technique. A solvent-based surface modification process has been carried out to control the grain boundary effect on the charge transfer process of Sn-In2O3 film. The surface modification process's impact on the structural, surface morphology, surface charge state, optical, and electrical properties of Sn-In2O3 thin films was used to investigate the power conversion efficiency (PCE) of the developed PSCs. The glancing angle X-ray diffraction (GAXRD), X-ray photoelectron spectroscopy (XPS), Field Emission Scanning Electron Microscopy (FE-SEM), AFM, Ultra-Violet visible and Near Infra-Red (UV–Vis–NIR and Hall measurements confirm the significant variation of Sn-In2O3 films based on the surface modification process. A surface-modified Sn-In2O3 thin film-based ETL-used PSC device demonstrated a maximum efficiency of 14.3 %, whereas a pristine-based Sn-In2O3 thin film showed a maximum efficiency of 7.2 %. The results obtained indicate that surface-modified spray-deposited Sn-In2O3 thin film can be a suitable candidate to serve as an ETL for PSC device fabrication.
KW - Efficiency
KW - Electron transport layer
KW - Perovskite solar cell
KW - Sn-InO thin film
KW - Spray pyrolysis
UR - http://www.scopus.com/inward/record.url?scp=85217087254&partnerID=8YFLogxK
U2 - 10.1016/j.solmat.2025.113481
DO - 10.1016/j.solmat.2025.113481
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AN - SCOPUS:85217087254
SN - 0927-0248
VL - 284
JO - Solar Energy Materials and Solar Cells
JF - Solar Energy Materials and Solar Cells
M1 - 113481
ER -