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Cubic AgBiS <sub/>2</sub> Colloidal Nanocrystals for Solar Cells

DOI:10.1021/acsanm.9b02443 期刊:ACS Applied Nano Materials 出版年份:2020 更新时间:2025-09-19 17:13:59
摘要: Recent progress in colloidal quantum dot (CQD) based solar cells indicates that low toxic materials such as AgBiS2 nanocrystals (NCs) show potential in replacing toxic PbS and CdS CQDs in solar cell applications. In this study, an investigation on the importance of the composition and sensitivity toward synthesis conditions was performed by adjusting concentrations and ratios of Ag and Bi precursors. Firstly, by varying the ratio of Ag towards Bi precursors, and secondly by varying the concentration of Ag with a constant ratio towards Bi precursors in the solution. Furthermore elemental XPS studies and TEM imaging, together with solar cell analysis indicated a strong correlation between the concentration of Ag precursor and the NC properties, and moreover the solar cell properties based on these NCs. In short, a large amount of Ag precursor resulted in smaller Ag rich NCs, which resulted in solar cells with high photovoltage but low photocurrent density, while a lower amount of Ag precursor resulted in larger NCs, and solar cells with a lower photovoltage. The Ag:Bi:S ratio of 0.72:0.9:1 resulted in almost stoichiometric NCs but with a slight excess of Ag, which in turn resulted in solar cells with the highest performance. This work therefore gives insight in how the elemental composition and size of the NCs can be tuned by the precursor ratios, and how this in turn affects the performance of the solar cell devices.
作者: Viktor ?berg,Malin B. Johansson,Xiaoliang Zhang,Erik M. J. Johansson
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Investigating the importance of the composition and sensitivity toward synthesis conditions of AgBiS2 nanocrystals (NCs) for solar cell applications by adjusting concentrations and ratios of Ag and Bi precursors.

The composition and size of AgBiS2 NCs can be tuned by adjusting precursor ratios, significantly affecting solar cell performance. A precursor ratio of Ag:Bi:S of 0.72:0.9:1 yielded NCs with near-stoichiometric composition and slight Ag excess, leading to the highest solar cell efficiency of 3.3%. Optimal device performance was achieved with 12 layers of NCs.

The study focuses on the synthesis and initial performance of AgBiS2 NCs in solar cells. Long-term stability and scalability of the synthesis method and solar cell devices were not extensively explored.

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