带隙工程混合卤化物钙钛矿薄膜的真空沉积方法

IF 0.3 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanomaterials and Energy Pub Date : 2023-03-01 DOI:10.1680/jnaen.23.00003
Rekha Yadav, Gangadhar Banappanavar, M. Aslam
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引用次数: 0

摘要

混合卤化物钙钛矿具有带隙可调谐性的重要特性,这对串联太阳能电池至关重要。本文报道了利用相应的混合卤化物钙钛矿纳米颗粒作为热蒸发源的MAPbBr2Cl1(MA(甲基铵)=CH3NH3)、MAPbBr1.5Cl1.5和MAPbBr1Cl2钙钛矿膜的单源气相沉积方法。此外,真空沉积的MAPbBr3薄膜中的带隙调谐是通过MACl处理进行的,带隙调谐成功地从2.37到2.48 室温下氯(Cl)掺入钙钛矿结构的限制通过气相沉积的MAPbBr2Cl1、MAPbBr1.5Cl1.5和MAPbBr1Cl2膜的MACl处理来解决。MAPbBr3−x Cl x薄膜的结构性质显示,x射线衍射峰向更高的2θ值连续移动,证实了氯掺入钙钛矿结构。MAPbBr3−x Cl x薄膜的带隙调谐,从2.37到2.86 通过吸收光谱法确认了电子伏特。从膜的晶粒尺寸增加可以观察到,混合卤化物钙钛矿膜在MACl处理后表现出改善的微观结构。此外,发射研究表明,MAPbBr3−x Cl x薄膜在连续暴露于325下时具有良好的抗相偏析稳定性 100的nm波长照明 mW/cm2,适用于60以上 min相偏析的减少可能有助于推进混合卤化物钙钛矿在可靠光电器件中的应用。
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Band-gap-engineered mixed-halide perovskite films through vacuum-based deposition approach
Mixed-halide perovskites offer the important characteristic of band-gap tunability, which is essential for tandem solar cells. Herein, the single-source vapor deposition method is reported for MAPbBr2Cl1 (MA (methyl ammonium) = CH3NH3), MAPbBr1.5Cl1.5 and MAPbBr1Cl2 perovskite films utilizing the corresponding mixed-halide perovskite nanoparticles as a source for thermal evaporation. Further, band-gap tuning in vacuum-deposited MAPbBr3 thin films is performed through MACl treatment with successful band-gap tuning from 2.37 to 2.48 eV. The limitation of chlorine (Cl) incorporation into the perovskite structure at room temperature is tackled by MACl treatment of vapor-deposited MAPbBr2Cl1, MAPbBr1.5Cl1.5 and MAPbBr1Cl2 films. The structural properties of MAPbBr3−x Cl x films show a continuous shift in the X-ray diffraction peak toward a higher 2θ value, confirming chlorine incorporation into the perovskite structure. Band-gap tuning in MAPbBr3−x Cl x films, from 2.37 to 2.86 eV, is confirmed by absorption spectroscopy. The mixed-halide perovskite films show an improved microstructure with MACl treatment, as observed from the increased grain size of the films. Further, emission studies show good stability of MAPbBr3−x Cl x films against phase segregation under continuous exposure to 325 nm wavelength illumination of 100 mW/cm2 for more than 60 min. The diminished phase segregation might help in advancing the application of mixed-halide perovskites for reliable optoelectronic devices.
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来源期刊
Nanomaterials and Energy
Nanomaterials and Energy MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
2.10
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0.00%
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2
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