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首页> 外文期刊>Materials science & engineering. C, Biomimetic and supramolecular systems >The role of molecular architecture and layer composition on the properties and performance of CuPc-C_(60) photovoltaic devices
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The role of molecular architecture and layer composition on the properties and performance of CuPc-C_(60) photovoltaic devices

机译:分子结构和层组成对CuPc-C_(60)光伏器件性能和性能的影响

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摘要

We have studied the effects of molecular architecture, co-deposition and annealing on the properties and performance of photovoltaic cells based on copper phthalocyanine (CuPc)-fullerene (C_(60)) heterojunctions. Significant improvements in performance are achieved when mixed CuPc:C_(60) layers are incorporated into the device structure due to the creation of an intermolecularly mixed donor (D)-acceptor (A) blend that favours efficient exciton dissociation. We utilise the control afforded by organic molecular beam deposition to show that the mixed-layer composition plays an important role in determining device performance and correlate device efficiency to the morphological and spectroscopic properties of the organic layers. A maximum power conversion efficiency of η_p= 1.17% is achieved for devices containing a mixed layer of ratio 75:25 CuPc:C_(60) surrounded by thin continuous layers of pure organic material at the electrode interfaces. A structure containing a compositional gradient where the CuPc:C_(60) composition is varied from purely D to purely A via three mixed layers of increasing A composition leads to a further improvements in efficiency (η_p= 1.36%). Finally, we use thermal annealing to show how structural defects and morphological templating of organic thin films reduces the interfacial area for exciton separation and yields poor device performance.
机译:我们已经研究了分子结构,共沉积和退火对基于铜酞菁(CuPc)-富勒烯(C_(60))异质结的光伏电池性能和性能的影响。当将混合的CuPc:C_(60)层合并到器件结构中时,由于创建了分子间混合的供体(D)-受体(A)共混物,从而促进了有效的激子离解,从而实现了性能的显着提高。我们利用有机分子束沉积提供的控制来显示混合层组成在确定器件性能中起着重要作用,并将器件效率与有机层的形态和光谱特性相关联。对于包含比率为75:25 CuPc:C_(60)的混合层的器件,在电极界面处被纯有机材料的连续薄层包围,器件的最大功率转换效率为η_p= 1.17%。包含组成梯度的结构,其中CuPc:C_(60)组成通过增加A组成的三个混合层从纯D变为纯A,导致效率进一步提高(η_p= 1.36%)。最后,我们使用热退火来显示有机薄膜的结构缺陷和形态模板如何减少激子分离的界面面积并产生不良的器件性能。

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