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Hf Doping for Defect and Carrier Management in Magnetron-Sputtered Tin Oxide Electron Transport Layers for Perovskite
Shuai Lan1, Geon Woo Yoon1, Fang Luo1
1School of Advanced Materials Science and Engineering, Sungkyunkwan University (SKKU), Suwon, Gyeonggi-do 16419, Republic of Korea.
Abstract:
The performance of perovskite solar cells (PSCs) with magnetron-sputtered tin oxide (SnO) electron transport layers (ETLs) is strongly influenced by the optical and electrical characteristics of the SnO. However, magnetron-sputtered SnO typically exhibits oxygen-vacancy (VO)-related point defects. This leads to significant interface charge recombination, which restricts both the open-circuit voltage (VOC) and fill factor (FF) of PSCs using SnO ETLs. In this study, a Hf-doping strategy is proposed to enhance the transmittance of SnO ETLs, reduce VO defects, and modulate the carrier density. The introduction of Hf dopants into SnO successfully minimized VO-defect formation, as confirmed by Hall-effect measurements, X-ray absorption spectroscopy, and X-ray photoelectron spectroscopy, leading to a reduced carrier density in SnO. Density functional theory simulations corroborated these experimental findings, revealing the mechanism behind VO suppression. PSCs incorporating HTO ETLs demonstrated marked improvements in key performance parameters, including short-circuit current density, VOC, and FF. Optimized HTO-based PSCs achieved an average power-conversion efficiency (PCE) of 18.23%, exhibiting a 14.2% increase compared with undoped SnO-based devices. Additionally, the best-performing PSCs utilizing HTO ETLs achieved an optimal PCE of 21.2% under reverse scan and 19.9% under forward scan.
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