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Hydrogenated TiO2 Thin Film for Accelerating Electron Transport in Highly Efficient Planar Perovskite Solar Cells

机译:氢化TiO2薄膜用于加速高效平面钙钛矿太阳能电池中的电子传输

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摘要

Intensive studies on low‐temperature deposited electron transport materials have been performed to improve the efficiency of n‐i‐p type planar perovskite solar cells to extend their application on plastic and multijunction device architectures. Here, a TiO2 film with enhanced conductivity and tailored band edge is prepared by magnetron sputtering at room temperature by hydrogen doping (HTO), which accelerates the electron extraction from perovskite photoabsorber and reduces charge transfer resistance, resulting in an improved short circuit current density and fill factor. The HTO film with upward shifted Fermi level guarantees a smaller loss on V OC and facilitates the growth of high‐quality absorber with much larger grains and more uniform size, leading to devices with negligible hysteresis. In comparison with the pristine TiO2 prepared without hydrogen doping, the HTO‐based device exhibits a substantial performance enhancement leading to an efficiency of 19.30% and more stabilized photovoltaic performance maintaining 93% of its initial value after 300 min continuous illumination in the glove box. These properties permit the room‐temperature magnetron sputtered HTO film as a promising electron transport material for flexible and tandem perovskite solar cell in the future.
机译:为了提高n-i-p型平面钙钛矿太阳能电池的效率,已对其进行了深入的研究,以提高其在塑料和多结器件体系结构中的应用。在这里,通过磁控管溅射在室温下通过氢掺杂(HTO)制备具有增强的电导率和定制的带边的TiO2膜,该膜加速了钙钛矿光吸收剂的电子提取并降低了电荷转移电阻,从而改善了短路电流密度和填充因子。费米能级向上移动的HTO膜确保了较小的V OC损耗,并促进了具有更大晶粒和更均匀尺寸的高质量吸收剂的生长,从而导致器件的磁滞可忽略不计。与未经氢掺杂的原始TiO2相比,这种基于HTO的设备显示出显着的性能提升,可在手套箱中连续照明300分钟后实现19.30%的效率和更稳定的光伏性能,保持其初始值的93%。这些特性使室温磁控溅射HTO薄膜成为未来柔性和串联钙钛矿太阳能电池的有希望的电子传输材料。

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