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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Exceptional stability of Mg-implemented PbS quantum dot solar cells realized by galvanic corrosion protection
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Exceptional stability of Mg-implemented PbS quantum dot solar cells realized by galvanic corrosion protection

机译:通过电腐蚀保护实现的Mg实现的PbS量子点太阳能电池具有出色的稳定性

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摘要

Lead sulfide (PbS) quantum dots (QDs) have been the focus of photovoltaics research because of their high quantum confinement effect and broad band absorption in the red to near-infrared (NIR) region. However, PbS QDs are easily oxidized under ambient conditions and many research groups are trying to improve their stability in air. In particular, various organic or inorganic materials are used to protect the PbS surface. In this report, we introduce the Mg-implemented PbS colloidal system (Mg-PbS) with enhanced PbS air stability. We obtained a short-circuit current density (JSC) of 11.8 mA cm(-2), open-circuit voltage (V-OC) of 0.6 V, fill factor (FF) of 62.3%, and power conversion efficiency (eta) of 4.4% in a m-TiO2 solid PV cell using Mg-PbS. In addition, their cell properties remained unchanged in a corrosive ethanedithiol solution even after 4 days because of the Mg galvanic corrosion protection of PbS QDs, whereas the PbS QD solar cells were quickly degraded by the corrosion of PbS QDs.
机译:硫化铅(PbS)量子点(QDs)由于其高的量子限制效应和在红至近红外(NIR)区域的宽带吸收而成为光伏研究的焦点。但是,PbS QD在环境条件下容易被氧化,许多研究小组正在努力提高其在空气中的稳定性。特别地,各种有机或无机材料用于保护PbS表面。在本报告中,我们介绍了具有增强的PbS空气稳定性的Mg实现的PbS胶体系统(Mg-PbS)。我们获得了11.8 mA cm(-2)的短路电流密度(JSC),0.6 V的开路电压(V-OC),62.3%的填充因数(FF)以及功率转换效率(eta)为在使用Mg-PbS的m-TiO2固体光伏电池中占4.4%。另外,由于PbS QD的Mg电腐蚀保护,即使在4天后,它们在腐蚀性乙二硫醇溶液中的电池性能也保持不变,而PbS QD的腐蚀很快使PbS QD太阳能电池退化。

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