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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >A strategy to improve the energy conversion efficiency and stability of quantum dot-sensitized solar cells using manganese-doped cadmium sulfide quantum dots
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A strategy to improve the energy conversion efficiency and stability of quantum dot-sensitized solar cells using manganese-doped cadmium sulfide quantum dots

机译:利用掺杂锰的硫化镉量子点提高量子点敏化太阳能电池的能量转换效率和稳定性的策略

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This article describes the effect of manganese (Mn) doping in CdS to improve the photovoltaic performance of quantum dot sensitized solar cells (QDSSCs). The performances of the QDSSCs are examined in detail using a polysulfide electrolyte with a copper sulfide (CuS) counter electrode. Under the illumination of one sun (AM 1.5 G, 100 mW cm(-2)), 10 molar% Mn-doped CdS QDSSCs exhibit a power conversion efficiency (eta) of 2.85%, which is higher than the value of 2.11% obtained with bare CdS. The improved photovoltaic performance is due to the impurities from Mn2+ doping of CdS, which have an impact on the structure of the host material and decrease the surface roughness. The surface roughness and morphology of Mn-doped CdS nanoparticles can be characterised from atomic force microscopy images. Furthermore, the cell device based on the Mn-CdS electrode shows superior stability in the sulfide/polysulfide electrolyte in a working state for over 10 h, resulting in a highly reproducible performance, which is a serious challenge for the Mn-doped solar cell. Our finding provides an effective method for the fabrication of Mn-doped CdS QDs, which can pave the way to further improve the efficiency of future QDSSCs.
机译:本文介绍了在CdS中掺杂锰(Mn)对改善量子点敏化太阳能电池(QDSSCs)的光伏性能的影响。使用带有硫化铜(CuS)对电极的多硫化物电解质详细检查了QDSSC的性能。在1个太阳的照射下(AM 1.5 G,100 mW cm(-2)),10摩尔%Mn掺杂的CdS QDSSCs的功率转换效率(eta)为2.85%,高于获得的2.11%的值裸露的CdS。光伏性能的改善归因于CdS的Mn2 +掺杂产生的杂质,这些杂质对基质材料的结构有影响并降低了表面粗糙度。 Mn掺杂的CdS纳米颗粒的表面粗糙度和形态可以通过原子力显微镜图像表征。此外,基于Mn-CdS电极的电池装置在工作状态下在硫化物/多硫化物电解质中显示超过10小时的优异稳定性,导致高度可再现的性能,这对于掺杂Mn的太阳能电池是严重的挑战。我们的发现为制造锰掺杂的CdS量子点提供了一种有效的方法,可以为进一步提高未来QDSSC的效率铺平道路。

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