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Non-Cadmium TiO2/Sb(Se, S) Heterojunction Solar Cells with Improved Efficiency by NaCl-Treated Interface Engineering
Deyang Qin1, Panpan Yang1, Yuxin Pan1
1State key Laboratory of Precision Spectroscopy, Department of Electronic Engineering, East China Normal University, 500 Dongchuan Road, Shanghai 200241, China.
Abstract:
Cadmium sulfide (CdS) is widely employed as the electron transport layer due to its ability to form dense films in the fabrication of antimony selenosulfide (Sb2(S, Se)3) solar cells. However, it presents significant drawbacks: its toxicity poses environmental risks, and its narrow bandgap restricts the collection of higher-energy carriers. Titanium dioxide (TiO2) stands out as a viable and environmentally friendly alternative, offering features, such as high optical transparency, excellent stability, and nontoxic characteristics, making it highly suitable for application in Sb2(S, Se)3 thin-film solar cells. In our study, we employed a sodium chloride (NaCl) solution treatment to enhance the quality of TiO2 films grown via the chemical bath deposition (CBD) method. The Na ions introduced during postannealing play a pivotal role in optimizing the interface between the TiO2 and Sb2(S, Se)3 layers. This treatment enhances the bandgap of the TiO2 layer, improving electronic coupling at the p-n junction. This process significantly boosts device performance, including the short-circuit current density (JSC) and open-circuit voltage (VOC). As a result, the power conversion efficiency (PCE) of the TiO2/Sb2(S, Se)3 heterojunction solar cells improved remarkably from 2.3% to 5.5%. The novel approach highlights the effectiveness of wide-bandgap TiO2 buffer layers in advancing Sb2(S, Se)3 solar cells. By overcoming the limitations of traditional CdS layers and integrating Na ion-enhanced TiO2 films, this study demonstrates a promising route for achieving high-efficiency and environmentally sustainable solar cells.
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