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首页> 外文期刊>Solar Energy >Lead-free formamidinium bismuth perovskites (FA)_3Bi_2I_9 with low bandgap for potential photovoltaic application
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Lead-free formamidinium bismuth perovskites (FA)_3Bi_2I_9 with low bandgap for potential photovoltaic application

机译:具有低带隙的无铅甲form钛酸铋铋(FA)_3Bi_2I_9,适用于潜在的光伏应用

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摘要

Bismuth halide perovskites are potential lead-free absorbing materials for solar cells. However, methylamine and cesium-based bismuth perovskites are insufficient for visible light absorption because of their large bandgaps. In this work, we developed a new formamidinium (FA)-based bismuth perovskite material, (FA)(3)Bi2I9. (FA)(3)Bi2I9 shows a hexagonal phase with an enlarged unit cell than the conventional methylamine-based bismuth perovskite (MA)(3)Bi2I9. It has a bandgap of 2.19 eV and a Wannier-Mott exciton binding energy of 260 meV, which are lower than those of (MA)(3)Bi2I9 (2.25 eV and 320 meV, respectively) in our experiments. Thus, (FA)(3)Bi2I9 is more suitable as an absorbing layer for solar cells than (MA)(3)Bi2I9. In addition, solvents can effectively control the growth of (FA)(3)Bi2I9 films. In specific, using dimethyl sulfoxide as the solvent resulted in enhanced c-axis oriented growth and plate-like microstructure. With these bismuth perovskite films as absorbing layers, mesoporous-structured (FA)(3)Bi2I9 solar cells were fabricated for the first time. The initial devices show the highest open voltage of 0.48 V and a power conversion efficiency of 0.022%, which are higher than those of methylamine-based bismuth perovskite solar cells, offering a potential candidate for lead-free perovskite solar cells.
机译:卤化铋钙钛矿是潜在的用于太阳能电池的无铅吸收材料。然而,甲胺和铯基钙钛矿铋由于其大的带隙不足以吸收可见光。在这项工作中,我们开发了一种新的基于甲ami(FA)的钙钛矿铋材料(FA)(3)Bi2I9。 (FA)(3)Bi2I9显示出六方相,其晶胞比常规甲胺基钙钛矿铋(MA)(3)Bi2I9大。在我们的实验中,它的带隙为2.19 eV,Wannier-Mott激子结合能为260 meV,低于(MA)(3)Bi2I9(分别为2.25 eV和320 meV)。因此,与(MA)(3)Bi2I9相比,(FA)(3)Bi2I9更适合作为太阳能电池的吸收层。此外,溶剂可以有效地控制(FA)(3)Bi2I9膜的生长。特别地,使用二甲基亚砜作为溶剂导致增强的c轴定向生长和板状微结构。以这些钙钛矿铋薄膜为吸收层,首次制备了介孔结构的(FA)(3)Bi2I9太阳能电池。最初的器件显示出0.48 V的最高开路电压和0.022%的功率转换效率,高于基于甲胺的钙钛矿型铋酸钙太阳能电池的功率,为无铅钙钛矿型太阳能电池提供了潜在的候选者。

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