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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Enhanced energy level alignment and hole extraction of carbon electrode for air-stable hole-transporting material-free CsPbBr3 perovskite solar cells
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Enhanced energy level alignment and hole extraction of carbon electrode for air-stable hole-transporting material-free CsPbBr3 perovskite solar cells

机译:增强碳电极的能量水平对准和空穴萃取空气稳定空穴传输材料的无碳酸钴CSPBBR3钙钛矿太阳能电池

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摘要

Carbon-based hole-transporting material (HTM)-free CsPbBr3 perovskite solar cells (PSCs) provide new opportunities for promoting the commercial application of PSCs because of the low cost, simple preparation process and excellent stability under various extreme conditions. One of the remaining problems for inorganic CsPbBr3 PSCs is the low power conversion efficiency (PCE) due to the large energy level difference and inefficient hole extraction at CsPbBr3/carbon interface. Herein, polyaniline/graphite (PANi/G) composites are incorporated into carbon electrode to tailor work function and to improve hole-selectivity of back electrode for enhanced energy level alignment and interfacial hole extraction, leading to a remarkably reduced energy loss and charge recombination. The HTM-free CsPbBr3 PSC based on carbon-PANi/G electrode achieves a PCE of 8.87%, which is increased by 43.8% in comparison with 6.17% for the control device. Moreover, the unencapsulated device shows excellent long-term moisture tolerance with the initial PCE maintaining 93.5% even exposure to air atmosphere with 80% RH at 25 degrees C over 50 days. The successful improvement of energy level alignment and charge extraction in device by directly incorporating PANi/G composites into carbon electrode offers a promising strategy in developing low-cost and efficient HTM-free PSCs.
机译:基于碳的空穴传输材料(HTM) - 免费CSPBBR3 PEROVSKITE太阳能电池(PSCS)为促进PSC商业应用的新机会,因为成本低,制备工艺简单,在各种极端条件下出色的稳定性。无机CSPBBR3 PSC的剩余问题之一是由于CSPBBR3 /碳接口的大能量水平差和效率孔效率较大而导致的低功率转换效率(PCE)。这里,将聚苯胺/石墨(PANI / G)复合材料掺入碳电极中以定制功函数,并改善背电极的孔选择性以提高能量水平对准和界面孔提取,导致能量损失和电荷重组显着降低。基于碳-PANI / g电极的HTM-FSPBBR3 PSC达到8.87%的PCE,与控制装置的6.17%相比,增加了43.8%。此外,未封装的装置显示出优异的长期耐湿性,其初始PCE保持93.5%甚至暴露于80%RH的空气气氛,在50天超过25℃。通过直接将PANI / G复合材料直接将PANI / G复合物直接掺入碳电极中的能量水平对准和电荷提取,提供了开发低成本和高效的HTM的PSC的有希望的策略。

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