Mesoporous SnO2 Nanoparticle-Based Electron Transport Layer for Perovskite Solar Cells

被引:13
作者
Ullah, Sami [1 ,2 ]
Din, Muhammad Faraz Ud [1 ]
Kasi, Jafar Khan [2 ]
Kasi, Ajab Khan [2 ]
Vegso, Karol [1 ,3 ]
Kotlar, Mario [4 ]
Micusik, Matej [5 ]
Jergel, Matej [1 ,3 ]
Nadazdy, Vojtech [1 ,3 ]
Siffalovic, Peter [1 ,3 ]
Majkova, Eva [1 ,3 ]
Fakharuddin, Azhar [6 ]
机构
[1] Slovak Acad Sci, Inst Phys, Bratislava 84511, Slovakia
[2] Univ Balochistan, Dept Phys, Quetta 87300, Pakistan
[3] Slovak Acad Sci, Ctr Adv Mat Applicat, Bratislava 84511, Slovakia
[4] Slovak Univ Technol Bratislava, Ctr Nanodiagnost Mat, Bratislava 81243, Slovakia
[5] Slovak Acad Sci, Polymer Inst, Bratislava 84541, Slovakia
[6] Univ Konstanz, Dept Phys, D-78464 Constance, Germany
关键词
mesoporous tin dioxide; anodization; electron transport layer; perovskite solar cells; power conversion efficiency; NANOPOROUS TIN OXIDE; ELECTROCHEMICAL ANODIZATION; EFFICIENT; PERFORMANCE; CH3NH3PBI3; MANAGEMENT; STABILITY;
D O I
10.1021/acsanm.2c00840
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A perovskite solar cell (PSC) featuring a mesoporous architecture can facilitate perovskite layer formation over a large area via increasing the number of heterogeneous nucleation sites. The morphology of the electron transport layer (ETL) and its interface with the perovskite layer is one of the key factors to boost the performance of a PSC. Tin dioxide (SnO2) is considered as a promising ETL in PSCs owing to its high carrier mobility, good transmittance, deep conduction band level, and efficient photoelectron extraction. Generally, the mesoporous SnO2 (mSnO(2)) ETL has a higher surface-to-volume ratio compared to a compact SnO2 layer. Herein, we report on an m-SnO2 ETL prepared by anodizing a metallic tin film on a fluorine-doped tin oxide (FTO) substrate in NaOH solution under an ambient atmosphere. In particular, we developed a bilayer architecture of the m-SnO2 ETL based on the fabrication of two consecutive m-SnO2 layers. The morphology of each layer was controlled by varying the anodization voltage and time at a constant solution concentration during the growth process. This unique approach enabled the deposition of an m-SnO2 ETL with sufficient coverage of the FTO substrate, which is difficult to achieve with a single layer of m-SnO2. In particular, the scanning electron and atomic force microscopy analyses confirmed that the m-SnO2 layer covers completely the FTO substrate. The device fabricated with this bilayer m-SnO2 ETL achieved a 27% improvement in power conversion efficiency compared to that with a single layer of m-SnO2.
引用
收藏
页码:7822 / 7830
页数:9
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