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Vertically aligned ZnO nanorods doped with lithium for polymer solar cells: defect related photovoltaic properties

机译:用于聚合物太阳能电池的掺杂锂的垂直排列的ZnO纳米棒:与缺陷相关的光伏性能

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摘要

The nanorod arrays of ZnO incorporated with lithium atoms show specific crystallinity, photoluminescence and absorption properties, which are promising for the improvement of photovoltaic performance of hybrid solar cells based on ZnO/poly(3-hexylthiophene). Li ions can be incorporated into ZnO crystals during the hydrothermal growth of the nanorods. The presence of Li in ZnO crystal was confirmed through X-ray diffraction analysis and by the photoluminescence spectra obtained. The difference in photovoltaic properties brought about by Li doping was determined from concentrations of the precursor solution. It was determined that appropriate Li doping improves both the short circuit current density (J_[sc]) and open circuit voltage (V_[oc]). The quenching of photoluminescence of Li-doped ZnO nanorods/P3HT films indicates effective charge transfer at the interface due to oxygen-enrichment of the surface, corresponding to the enhancement of J_[sc]. The improvement of V_[oc] was due to the suppression of the charge injection from the electrode brought about by the increase in barrier height at the ITO/ZnO interface as the work function of the ZnO nanorods was reduced after Li ion doping. However, further substitution of Li to Zn (Li_[Zn]) leads to increased reverse current densities of minority carriers decreasing V_[oc] after the maximum value at 5 atom% incorporation. The maximum power conversion efficiency of 0.37% was obtained at 5 atom% doping, although improvements in photovoltaic performances through Li doping were still seen up to 20 atom% doping.
机译:掺有锂原子的ZnO纳米棒阵列具有特定的结晶度,光致发光和吸收特性,这有望改善基于ZnO /聚(3-己基噻吩)的混合太阳能电池的光伏性能。可以在纳米棒的水热生长过程中将锂离子掺入ZnO晶体中。通过X射线衍射分析和所获得的光致发光光谱证实了ZnO晶体中Li的存在。由锂掺杂引起的光伏性能差异是由前体溶液的浓度确定的。已经确定适当的Li掺杂同时改善了短路电流密度(J_ [sc])和开路电压(V_ [oc])。掺杂Li的ZnO纳米棒/ P3HT薄膜的光致发光猝灭表明由于表面氧的富集,界面上的有效电荷转移,这对应于J_ [sc]的增强。 V_ [oc]的改善归因于由于在Li离子掺杂之后降低了ZnO纳米棒的功函而抑制了由于ITO / ZnO界面处的势垒高度的增加而导致的来自电极的电荷注入。然而,将Li进一步取代为Zn(Li_ [Zn])会导致少数载流子的反向电流密度增加,从而在掺入5原子%的最大值后降低V_ [oc]。在5原子%的掺杂下获得了0.37%的最大功率转换效率,尽管高达20原子%的掺杂仍然可以看到通过锂掺杂改善了光伏性能。

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