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首页> 外文期刊>ACS applied materials & interfaces >Vacuum-Assisted Drying Process for Screen-Printable Carbon Electrodes of Perovskite Solar Cells with Enhanced Performance Based on Cuprous Thiocyanate as a Hole Transporting Layer
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Vacuum-Assisted Drying Process for Screen-Printable Carbon Electrodes of Perovskite Solar Cells with Enhanced Performance Based on Cuprous Thiocyanate as a Hole Transporting Layer

机译:真空辅助干燥过程,用于钙钛矿太阳能电池的丝网印刷碳电极,基于亚硫氰酸亚氰酸亚氰酸酯的性能提高了孔输送层

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摘要

Carbon-based perovskite solar cells without a hole transport layer (HTL) are considered to be highly stable and of low cost. However, the deficient interface contact and inferior hole extraction capability restrict the further improvement of the device efficiency. Introducing a hole transporting layer, such as cuprous thiocyanate (CuSCN), can enhance the hole extraction ability and improve the interface contact. However, our further studies indicated that—at a certain temperature—for carbon-based solar cells, in the CuSCN layer, the diffusion of SCN~(–) into the perovskite film would produce more interfacial defects and aggravate nonradiative recombination, thus hindering the carrier transport. We further disclosed the reasons for performance attenuation during the thermal treatment of carbon electrodes, proposed a vacuum-assisted drying process for carbon electrodes to suppress the destructive effect, and finally, achieved an enhanced efficiency for perovskite solar cells with a CuSCN inorganic HTL and screen-printable carbon electrode. Also, the unencapsulated perovskite solar cell demonstrated over 80% efficiency retention after being stored in an ambient atmosphere (45–70% relative humidity (RH)) for over 1000 h and maintained over 85% efficiency retention for 309 h of 1-sun irradiation under a continuous nitrogen flow under open-circuit conditions.
机译:无空穴传输层(HTL)的碳基钙钛矿太阳能电池被认为具有高稳定性和低成本。然而,界面接触不足和抽孔能力差限制了器件效率的进一步提高。引入空穴传输层,如硫氰酸亚铜(CuSCN),可以提高空穴提取能力,改善界面接触。然而,我们进一步的研究表明,对于碳基太阳能电池,在一定温度下,在CuSCN层中,SCN(–)扩散到钙钛矿薄膜中会产生更多的界面缺陷,加剧非辐射复合,从而阻碍载流子传输。我们进一步揭示了碳电极热处理过程中性能衰减的原因,提出了碳电极真空辅助干燥工艺,以抑制破坏效应,并最终实现了具有CuSCN无机HTL和可丝网印刷碳电极的钙钛矿太阳能电池的提高效率。此外,未封装的钙钛矿型太阳能电池在环境空气(45–70%相对湿度(RH))中储存超过1000小时后,显示出超过80%的效率保持率,并且在开路条件下,在连续氮气流下,单太阳照射309小时后,保持超过85%的效率保持率。

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