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An efficacious multifunction codoping strategy on a room-temperature solution-processed hole transport layer for realizing high-performance perovskite solar cells

机译:室温溶液处理空穴传输层上有效的多功能编排策略,用于实现高性能钙钛矿太阳能电池

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摘要

A multifunctional carrier transport layer favoring outstanding carrier extraction, high-quality active layer formation, and a facile low-temperature process for efficient and large-scale perovskite solar cells (PSCs) are highly desirable. While co-doping approaches have recently become a hot topic in carrier transport layers to address the negative effects and limitations of typical single doping and further boost the carrier extraction properties and thus device performances, high-temperature, high power, and multi-steps processes/treatments are required which hinder their applications and potentially damage underneath structures particularly in emerging flexible electronics. In this work, we demonstrate the first kind of room-temperature solution-processed and post-treatment-free Li and Cu codoped NiOx nanoparticle-based hole transport layer (HTL). Simultaneously, the Li and Cu codoped NiOx HTLs show the interesting and critical features of (1) improved electrical conductivity and optical transmittance, (2) a high quality (pin-hole/crack free, compact and uniform) film morphology, (3) favoring large grain-size perovskite film formation, and (4) wide-range thermal stability up to 250 degrees C. With these interesting multiple functions, PSCs with Li and Cu codoped NiOx HTLs achieve a PCE of 20.8% and 18.2% on rigid and flexible substrates, respectively. This work contributes to a promising route for realizing highly efficient and stable rigid and flexible PSCs using abundant low-cost inorganic HTLs.
机译:多功能载流子传输层有利于优秀的载流子提取、高质量的活性层形成,以及用于高效和大规模钙钛矿太阳能电池(PSC)的简便低温工艺是非常理想的。最近,共掺杂方法已成为载流子传输层的热门话题,以解决典型单掺杂的负面影响和局限性,并进一步提高载流子提取性能,从而提高器件性能、高温、高功率、,而且需要多步骤的处理/处理,这阻碍了它们的应用,并可能损坏结构下方,尤其是在新兴的柔性电子产品中。在这项工作中,我们展示了第一种室温溶液处理和后处理的无锂和铜共掺杂的NiOx纳米颗粒空穴传输层(HTL)。同时,锂和铜共掺杂的NiOx HTL显示了以下有趣且关键的特征:(1)提高了导电性和光学透过率,(2)高质量(针孔/无裂纹、致密且均匀)的薄膜形态,(3)有利于形成大晶粒尺寸的钙钛矿薄膜,以及(4)高达250℃的宽范围热稳定性,含锂和铜共掺杂NiOx HTL的PSC在刚性和柔性衬底上的PCE分别为20.8%和18.2%。这项工作为利用丰富的低成本无机HTL实现高效、稳定的刚性和柔性PSC提供了一条有希望的途径。

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