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首页> 外文期刊>Nano Energy >Boosting the efficiency and the stability of low cost perovskite solar cells by using CuPc nanorods as hole transport material and carbon as counter electrode
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Boosting the efficiency and the stability of low cost perovskite solar cells by using CuPc nanorods as hole transport material and carbon as counter electrode

机译:通过使用CuPc纳米棒作为空穴传输材料和碳作为反电极,提高低成本钙钛矿型太阳能电池的效率和稳定性

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摘要

Low temperature printable carbon cathode based perovskite solar cell was for the first time interfacial engineered with dopant free, nanorod-liked copper phthalocyanine (CuPc) to facilitate charge transportation. Both the CuPc and low temperature processed carbon are potentially noble metal-free and highly stable. By incorporating CuPc nanorods as hole-selective contact material, together with the printable low temperature processed carbon as cathode material, considerably high power conversion efficiency (PCE) of 16.1% was successfully obtained, which is comparable to or even a little higher than the device with state-of-the-art doped spiro-OMeTAD as HTM and noble metal Au as back electrode. Moreover, dramatically enhanced durability relative to doped-spiro-OMeTAD/Au based device was demonstrated by this newly developed device. Detailed excellent capability in accelerating charge extraction and suppressing charge recombination can be disclosed with steady state and time-resolved photoluminescence analysis and electrochemical impedance spectroscopy. To the best our knowledge, this is the highest efficiency that has been reported for PSCs based carbon counter electrode. The work presented here demonstrates an important step forwards to practical applications for PSCs, as it paves the way for developments of cost-effective, stable but still highly efficient PSCs, and offers the promise for a low-cost, mass-manufacturable technology that is compatible with current large-scale printing infrastructure. (C) 2015 Elsevier Ltd. All rights reserved.
机译:低温可印刷碳阴极阴极钙钛矿太阳能电池首次采用无掺杂,纳米棒状铜酞菁(CuPc)进行界面工程设计,以促进电荷传输。 CuPc和经低温处理的碳都可能不含贵金属且高度稳定。通过将CuPc纳米棒作为空穴选择性接触材料,并结合可印刷的低温处理碳作为阴极材料,成功获得了16.1%的相当高的功率转换效率(PCE),与该设备相当甚至更高。采用最先进的掺杂螺-OMeTAD作为HTM,并使用贵金属Au作为背电极。而且,相对于基于掺杂螺-OMeTAD / Au的器件,这种新开发的器件证明其耐用性大大提高。通过稳态和时间分辨的光致发光分析和电化学阻抗谱,可以揭示出在加速电荷提取和抑制电荷复合方面出色的出色能力。据我们所知,这是基于PSCs的碳对电极的最高效率。本文介绍的工作展示了PSC实际应用迈出的重要一步,因为它为开发经济高效,稳定但仍高效的PSC铺平了道路,并为低成本,可大规模生产的技术提​​供了希望与当前的大型打印基础架构兼容。 (C)2015 Elsevier Ltd.保留所有权利。

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