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首页> 外文期刊>ACS applied materials & interfaces >Efficient Type-II Heterojunction Nanorod Sensitized Solar Cells Realized by Controlled Synthesis of Core/Patchy-Shell Structure and CdS Cosensitization
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Efficient Type-II Heterojunction Nanorod Sensitized Solar Cells Realized by Controlled Synthesis of Core/Patchy-Shell Structure and CdS Cosensitization

机译:高效型II型异质结纳米孔敏化太阳能电池通过受控合成实现芯/斑壳结构和CDS烯烃化

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摘要

Here, we report the successful application of core/patchy-shell CdSe/CdSexTe1-x type-II heterojunction nanorods (HNRs) to realize efficient sensitized solar cells. The core/patchy-shell structure designed to have a large type-II heterointerface without completely shielding the CdSe core significantly improves photovoltaic performance compared to other HNRs with minimal or full-coverage shells. In addition, cosensitization with CdS grown by successive ionic layer adsorption and reaction further improves the power conversion efficiency. One-diode model analysis reveals that the HNRs having exposed CdSe cores and suitably grown CdS result in significant reduction of series resistance. Investigation of the intercorrelation between diode quality parameters, diode saturation current density (J(0)) and recombination order (beta = (ideality factor)(-1)) reveals that HNRs with open CdSe cores exhibit reduced recombination. These results confirm that the superior performance of core/patchy-shell HNRs results from their fine-tuned structure: photocurrent is increased by the large type-II heterointerface and recombination is effectively suppressed due to the open CdSe core enabling facile electron extraction. An optimized power conversion efficiency of 5.47% (5.89% with modified electrode configuration) is reported, which is unmatched among photovoltaics utilizing anisotropic colloidal heterostructures as light-harvesting materials.
机译:在这里,我们报告了核心/拼接 - 壳牌Cdse / CDSexte1-X Type-II异质结纳米棒(HNR)的成功应用,以实现有效的敏化太阳能电池。设计用于具有大型II型异形表面而无需完全屏蔽CDSE核心的芯/斑块 - 壳结构显着提高了光伏性能,与具有最小或全覆盖壳的其他HNR相比。另外,通过连续离子层吸附和反应的CDS的辅助化进一步提高了电力转换效率。一二极管模型分析显示,具有暴露的CDSE核心的HNR和适当的CDS导致串联电阻的显着降低。研究二极管质量参数,二极管饱和电流密度(J(0))和重组阶(β=(理想因子)( - 1))之间的互相关性揭示了具有开放CDSE核的HNR表现出降低的重组。这些结果证实,核心/斑块 - 壳HNR的优异性能来自其微调结构:光电流通过大型II型异构表面增加,并且由于开放的CDSE核心而有效地抑制了能够容易的电子提取。报告了优化的功率转换效率为5.47%(具有改性电极配置的5.89%),其在光伏中无与伦比的利用各向异性胶体异质结构作为光收获材料。

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