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基于ZnO/TCNE多功能相互作用的用于稳定倒置有机太阳能电池的未来电子传输层。

Futuristic electron transport layer based on multifunctional interactions of ZnO/TCNE for stable inverted organic solar cells.

作者信息

Aatif Md, Tiwari J P

机构信息

Advanced Materials and Devices Metrology Division (Photovoltaic Metrology Group), CSIR-National Physical Laboratory New Delhi 110012 India

Academy of Scientific and Innovative Research (AcSIR) CSIR-HRDC Campus Ghaziabad 201002 India.

出版信息

RSC Adv. 2020 Nov 20;10(69):42305-42317. doi: 10.1039/d0ra08093d. eCollection 2020 Nov 17.

Abstract

Solution-processed inverted bulk heterojunction (BHJ) organic solar cells (OSCs) are expected to play a significant role in the future of large-area flexible devices and printed electronics. In order to catch the potential of this inverted BHJ technology for use in devices, a solar cell typically requires low-resistance ohmic contact between the photoactive layers and metal electrodes, since it not only boosts performance but also protects the unstable conducting polymer-based active layer from degradation in the working environment. Interfacial engineering delivers a powerful approach to enhance the efficiency and stability of OSCs. In this study, we demonstrated the surface passivation of the ZnO electron transport layer (ETL) by an ultrathin layer of tetracyanoethylene (TCNE). We show that the TCNE film could provide a uniform and intimate interfacial contact between the ZnO and photo-active layer, simultaneously reducing the recombination of electron and holes and series resistance at the contact interface. After successful insertion of TCNE between the ZnO film and the active layer, the parameters, such as short circuit current density ( ) and fill factor (FF), greatly improved, and also a high-power conversion efficiency (PCE) of ∼8.59% was achieved, which is ∼15% more than that of the reference devices without a TCNE layer. The devices fabricated were based on a poly[[4,8-bis[(2-ethylhexyl)oxy]benzo[1,2- : 4,5-']dithiophene-2,6-diyl]-[3-fluoro-2[(2-ethylhexyl)-carbonyl]-thieno[3,4-]thiophenediyl]] (PTB7):(6,6)-phenyl C71 butyric acid methyl ester (PC71BM) blend system. These results suggest that this surface modification strategy could be readily extended in developing large-scale roll-to-roll fabrication of OSCs.

摘要

溶液处理的倒置体异质结(BHJ)有机太阳能电池(OSC)有望在大面积柔性器件和印刷电子的未来发展中发挥重要作用。为了挖掘这种倒置BHJ技术在器件中的潜力,太阳能电池通常需要在光活性层和金属电极之间形成低电阻欧姆接触,因为这不仅能提高性能,还能保护不稳定的基于导电聚合物的活性层在工作环境中不被降解。界面工程为提高OSC的效率和稳定性提供了一种有力的方法。在本研究中,我们展示了用超薄的四氰基乙烯(TCNE)层对ZnO电子传输层(ETL)进行表面钝化。我们表明,TCNE薄膜可以在ZnO和光活性层之间提供均匀且紧密的界面接触,同时减少电子和空穴的复合以及接触界面处的串联电阻。在成功将TCNE插入ZnO薄膜和活性层之间后,诸如短路电流密度( )和填充因子(FF)等参数得到了极大改善,并且还实现了约8.59%的高功率转换效率(PCE),这比没有TCNE层的参考器件高出约15%。所制备的器件基于聚[[4,8-双[(2-乙基己基)氧基]苯并[1,2- : 4,5-']二噻吩-2,6-二基]-[3-氟-2[(2-乙基己基)-羰基]-噻吩并[3,4-]噻吩二基]](PTB7):(6,6)-苯基C71丁酸甲酯(PC71BM)混合体系。这些结果表明,这种表面改性策略可以很容易地扩展到开发大规模卷对卷制造的OSC中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10cb/9057968/29b605a4ede1/d0ra08093d-f1.jpg

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