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Organic planar heterojunction solar cell optimisation with ITO obtained by ion beam sputtering

机译:离子束溅射获得的ITO优化有机平面异质结太阳能电池

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摘要

Single planar heterojunction organic solar cells based on CuPc-C-60 small molecule active layer have been optimised using ITO anode electrode obtained by ion beam sputtering (IBS). The main interests in IBS process is an easy control of layer thickness and light transmission, and a better roughness of the anode compared to commercially available ITO, which can allow a PEDOT-PSS layer thickness optimisation. Comparison of two identical solar cells with commercially available ITO and our ITO obtained by IBS leads to a power conversion efficiency enhancement from 0.5% to 0.7%. Surprisingly, decreasing the serial resistance by increasing ITO thickness does not lead to further improvements, and this feature has been attributed to an increase of the ITO absorption and a possible cathode breaking due to a too thick cell structure. Better roughness of our ITO has permitted to decrease the PEDOT-PSS layer thickness, leading to an enhancement of the power conversion efficiency up to 1.3%. Optimising the cathode by adding an exciton blocking layer (BCP or LiF) has allowed us to decrease the active layer thickness, leading to a decrease of the cell serial resistance and giving rise to near 1.9% power conversion efficiency.
机译:已使用通过离子束溅射(IBS)获得的ITO阳极电极优化了基于CuPc-C-60小分子活性层的单平面异质结有机太阳能电池。与商业化ITO相比,IBS工艺的主要兴趣在于易于控制层厚度和透光率,并具有更好的阳极粗糙度,这可以优化PEDOT-PSS层的厚度。将两个相同的太阳能电池与市售的ITO以及通过IBS获得的ITO进行比较,可以将功率转换效率从0.5%提高到0.7%。出人意料的是,通过增加ITO厚度来减小串联电阻不会导致进一步的改善,并且该特征归因于ITO吸收的增加以及由于单元结构太厚而可能导致的阴极断裂。更好的ITO粗糙度可以减少PEDOT-PSS层的厚度,从而将功率转换效率提高到1.3%。通过添加激子阻挡层(BCP或LiF)来优化阴极,使我们能够降低有源层的厚度,从而导致电池串联电阻的降低,并带来近1.9%的功率转换效率。

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