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The effect of TiO2 surface modification on the photovoltaic properties of hybrid bulk heterojunction solar cells based on MEH-PPV/CdS/TiO2 active layer

机译:TiO2表面改性对基于MEH-PPV / CdS / TiO2活性层的混合体异质结太阳能电池光伏性能的影响

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In this work, we present the synthesis details of uniform shape and size-controlled titanium dioxide (TiO2) nanorods followed by the deposition of cadmium sulfide (CdS) quantum dots on their surface. The achieved sur-factant-capped-TiO2 nanorods as well as CdS/TiO2 nano-composites were dispersed in nonpolar solvents, which enabled an easy solution blending with poly (2-methoxy, 5-(2-ethyl-hexy-loxy)-p-phenyl vinylene) (MEH-PPV) conjugated polymer to prepare the active layer of bulk heterojunction solar cells (BHJSCs). The properties of the synthesized capped-TiO2 nanorods, CdS/TiO2 nanocompo-sites, as well as those of their corresponding blends with MEH-PPV were characterized using transmission electron microscopy (TEM), thermogravimetric analysis (TGA), UV-Visible spectroscopy, and photoluminescence (PL) technique. The characterization of the effect of the surfactants (oleic acid, OA, olyamine, OM, and 6-aminohexanoic acid, 6AHA) left on TiO2 surface and CdS surface modification on BHJSC photovoltaic power conversion efficiency (PCE) showed that: i) for the same surfactants, when CdS was added on the surface of TiO2 nanorods, the PCE increased due to the higher efficiency of CdS compared to MEH-PPV; and ii) the best PEC was obtained with CdS/ OA-6AHA-capped-TiO2 nanocomposite due to the shortest length of the carbon-chain of 6AHA, leading to higher charge carrier mobility.
机译:在这项工作中,我们介绍了均匀形状和尺寸受控的二氧化钛(TiO2)纳米棒的合成细节,然后在其表面上沉积了硫化镉(CdS)量子点。将获得的表面活性剂封端的TiO2纳米棒以及CdS / TiO2纳米复合材料分散在非极性溶剂中,从而可以轻松地与聚(2-甲氧基,5-(2-乙基-己氧基)-对苯基亚乙烯基)(MEH-PPV)共轭聚合物,以制备体异质结太阳能电池(BHJSC)的活性层。使用透射电子显微镜(TEM),热重分析(TGA),紫外-可见光谱法对合成的封端TiO2纳米棒,CdS / TiO2纳米复合材料及其与MEH-PPV的相应混合物的性能进行了表征。和光致发光(PL)技术。表征残留在TiO2表面上的表面活性剂(油酸,OA,油胺,OM和6-氨基己酸,6AHA)和CdS表面改性对BHJSC光伏发电效率(PCE)的影响表明:与表面活性剂相同,当在TiO2纳米棒表面添加CdS时,由于CdS的效率高于MEH-PPV,因此PCE增加。 ii)由于6AHA的碳链最短,使用CdS / OA-6AHA封端的TiO2纳米复合材料可获得最佳的PEC,从而导致更高的载流子迁移率。

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