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Highly Improved Sb<sub>2</sub>S<sub>3</sub> Sensitized‐Inorganic–Organic Heterojunction Solar Cells and Quantification of Traps by Deep‐Level Transient Spectroscopy

Yong Chan ChoiDivision of Advanced Materials Korea Research Institute of Chemical Technology 141 Gajeong‐Ro Yuseong‐Gu Daejeon 305.600 Republic of KoreaDong Uk LeeDepartment of Physics and Quantum Function Research Laboratory Hanyang University Seoul 133–791 Republic of KoreaJun Hong NohDivision of Advanced Materials Korea Research Institute of Chemical Technology 141 Gajeong‐Ro Yuseong‐Gu Daejeon 305.600 Republic of KoreaEun Kyu KimDepartment of Physics and Quantum Function Research Laboratory Hanyang University Seoul 133–791 Republic of KoreaSang Il SeokDepartment of Energy Science Sungkyunkwan University Seoul 440–746 Republic of Korea
2014en
ABI

Annotatsiya

The light‐harvesting Sb 2 S 3 surface on mesoporous‐TiO 2 in inorganic–organic heterojunction solar cells is sulfurized with thioacetamide (TA). The photovoltaic performances are compared before and after TA treatment, and the state of the Sb 2 S 3 is investigated by X‐ray diffraction, X‐ray photoelectron spectroscopy, and deep‐level transient spectroscopy (DLTS). Although there are no differences in crystallinity and composition, the TA‐treated solar cells exhibit significantly enhanced performance compared to pristine Sb 2 S 3 ‐sensitized solar cells. From DLTS analysis, the performance enhancement is mainly attributed to the extinction of trap sites, which are present at a density of (2–5) × 10 14 cm −3 in Sb 2 S 3 , by TA treatment. Through such a simple treatment, the cell records an overall power conversion efficiency (PCE) of 7.5% through a metal mask under simulated illumination (AM 1.5G, 100 mW cm –2 ) with a very high open circuit voltage of 711.0 mV. This PCE is, thus far, the highest reported for fully solid‐state chalcogenide‐sensitized solar cells.

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