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The enhanced current density of the quantum dots solar cells based on CdSe:Mn~(2+) crystalline

机译:基于CdSe:Mn〜(2+)晶体的量子点太阳能电池的增强电流密度

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In this work, the pure CdSe and Mn-doped CdSe quantum dots were synthesized by Successive ionic layer absorption and reaction method for the high performance of quantum dots sensitized solar cells. Relevant molar concentrations of Mn(CH3COO)(2)center dot 2H(2)O were changed at 0.1 mM, 0.2 mM, 0.3 mM, 0.4 mM, and 0.5 mM as mixing with Cd(CH3COO)(2)center dot 2H(2)O anion source corresponding to x represent for the Mn2+-doped molar concentration. As a result, the quantum dots Solar cells were successfully prepared with the enhanced short current density from 7.63 mA/cm(2) to 18.99 mA/cm(2) for Mn2+ ions doped on CdSe nanoparticle corresponding to the enhanced efficiency of quantum dots solar cells from 1.64% for pure CdSe nanocrystal to 3.77% for Mn2+ ions doped on pure CdSe nanoparticle. Actually, Mn2+ dopant rises in the conduction band of pure CdSe nanocrystal, reduces recombination, enhances the efficiency of high harvesting, improve the charge transfer and collection. In addition, Mn2+ dopant can rise in the conduction band levels of pure CdSe nanocrystal, which leads to reduce the charge recombination, enhances the light-harvesting efficiency and improve the charge diffusion and collection. Correspondingly, the photoluminescence decay and Electrochemical Impedance Spectra were carried to determine the lifetime of excited electrons and dynamic resistances in QDSSCs.
机译:在这项工作中,通过连续离子层吸收和反应方法合成了纯CdSe和Mn掺杂的CdSe量子点,以实现量子点敏化太阳能电池的高性能。与Cd(CH3COO)(2)中心点2H()混合时,Mn(CH3COO)(2)中心点2H(2)O的相关摩尔浓度更改为0.1 mM,0.2 mM,0.3 mM,0.4 mM和0.5 mM。对应于x的2)O阴离子源代表Mn2 +掺杂的摩尔浓度。结果,对于掺杂在CdSe纳米粒子上的Mn2 +离子而言,成功地制备了具有从7.63 mA / cm(2)到18.99 mA / cm(2)的增强的短电流密度的量子点太阳能电池,这对应于增强的量子点太阳能电池的效率。从纯CdSe纳米晶体的1.64%到掺杂在纯CdSe纳米颗粒上的Mn2 +离子的3.77%。实际上,Mn2 +掺杂剂会在纯CdSe纳米晶体的导带中上升,减少重组,提高高收率的效率,改善电荷转移和收集。此外,Mn2 +掺杂剂可在纯CdSe纳米晶体的导带能级上升高,从而减少电荷复合,增强光收集效率并改善电荷扩散和收集。相应地,利用光致发光衰减和电化学阻抗谱来确定QDSSC中激发电子的寿命和动态电阻。

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