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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Aqueous synthesis of Mn-doped CuInSe2 quantum dots to enhance the performance of quantum dot sensitized solar cells
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Aqueous synthesis of Mn-doped CuInSe2 quantum dots to enhance the performance of quantum dot sensitized solar cells

机译:Mn掺杂CuinSe2量子点的水性合成,以增强量子点敏化太阳能电池的性能

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摘要

Herein, we present the direct aqueous synthesis of manganese (Mn) doped CuInSe2 (Mn-CISe) quantum dots (QDs) under microwave irradiation to improve the photochemical properties of solar cells. As a result of Mn doping, the narrower bandgap energy of Mn-CISe leads to higher visible light absorption. The Mn-CISe QDs are therefore used as photosensitizers in quantum dot sensitized solar cells (QDSSCs), exhibiting enhanced performance which is dependent on Mn concentration. To the best of our knowledge, this is the first time to construct an Mn-CISe sensitized-TiO2 photoanode to boost the photovoltaic performance of QDSSCs. The incorporation of Mn into CISe increases short-circuit current, which is ascribed to the effective injection of the excited electrons from QDs into TiO2 and the consequent higher electron lifetime, likely through a newly formed Mn midgap in the CISe band structure. Compared to the undoped QDs, Mn-CISe QDSSCs show a shorter electron transport time (tau(t)) and a longer electron recombination time (tau(r)) which are studied by intensity-modulated photocurrent spectroscopy and intensity-modulated photovoltage spectroscopy, respectively. In fact, a combination of higher light-harvesting efficiency, slower charge recombination, and a longer electron lifetime gives rise to a maximum photovoltaic performance of 6.28%.
机译:在此,我们在微波辐射下介绍了锰(Mn)掺杂的CuinSe2(Mn-Cise)量子点(QDS)的直接水合成,以改善太阳能电池的光化学特性。由于Mn掺杂,Mn-CISE的较窄带隙能量导致更高的可见光吸收。因此,MN-CISE QDS在量子点敏化太阳能电池(QDSSCs)中使用的光敏剂,表现出增强的性能,这取决于Mn浓度。据我们所知,这是第一次构建MN-CISE敏感 - TIO2 PhotoNode,以提高QDSSC的光伏性能。 Mn进入Cise的掺入增加了短路电流,其归因于从QDS进入TiO 2的有效喷射激发的电子和随后的更高电子寿命,可能通过Cise带结构中的新形成的Mn MidGap。与未掺杂的QD相比,MN-CISE QDSSCS显示较短的电子传输时间(TAU(T))和更长的电子复合时间(TAU(R)),其由强度调制的光电流光谱和强度调制的光电光谱研究,分别。事实上,更高的光收获效率,较慢的电荷重组和更长的电子寿命的组合产生了最大光伏性能为6.28%。

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