Low-Temperature Plasma-Assisted Atomic-Layer-Deposited SnO2 as an Electron Transport Layer in Planar Perovskite Solar Cells

被引:108
|
作者
Kuang, Yinghuan [1 ,5 ]
Zardetto, Valerio [2 ,3 ]
van Gils, Roderick [1 ]
Karwal, Saurabh [1 ]
Koushik, Dibyashree [1 ]
Verheijen, Marcel A. [1 ,4 ]
Black, Lachlan E. [1 ]
Weijtens, Christ [1 ]
Veenstra, Sjoerd [3 ]
Andriessen, Ronn [2 ,3 ]
Kessels, Wilhelmus M. M. [1 ,3 ]
Creatore, Mariadriana [1 ,3 ]
机构
[1] Eindhoven Univ Technol TU E, Dept Appl Phys, NL-5600 MB Eindhoven, Netherlands
[2] TNO, High Tech Campus 21, NL-5656 AE Eindhoven, Netherlands
[3] Solliance, High Tech Campus 21, NL-5656 AE Eindhoven, Netherlands
[4] Philips Innovat Labs, High Tech Campus 11, NL-5656 AE Eindhoven, Netherlands
[5] IMEC, Thin Film Photovolta Grp, EnergyVille 2,Thor Pk 8320, B-3600 Genk, Belgium
关键词
tin oxide; atomic layer deposition; perovskite solar cells; stability; interface; inorganic electron transport layer; TIN OXIDE; THIN-FILMS; PHOTOVOLTAIC PERFORMANCE; CH3NH3PBI3; PEROVSKITE; HALIDE PEROVSKITES; THERMAL-STABILITY; EFFICIENT; DEGRADATION; SPECTROSCOPY; PASSIVATION;
D O I
10.1021/acsami.8b09515
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In this work, we present an extensive characterization of plasma-assisted atomic-layer-deposited SnO2 layers, with the aim of identifying key material properties of SnO2 to serve as an efficient electron transport layer in perovskite solar cells (PSCs). Electrically resistive SnO2 films are fabricated at 50 degrees C, while a SnO2 film with a low electrical resistivity of 1.8 x 10(-3) Omega cm, a carrier density of 9.6 x 10(19) cm(-3), and a high mobility of 36.0 cm(2)/V s is deposited at 200 degrees C. Ultraviolet photoelectron spectroscopy indicates a conduction band offset of similar to 0.69 eV at the 50 degrees C SnO2/Cs-0.05(MA(0.17)FA(0.83))(0.95)Pb-(I2.7Br0.3) interface. In contrast, a negligible conduction band offset is found between the 200 degrees C SnO2 and the perovskite. Surprisingly, comparable initial power conversion efficiencies (PCEs) of 17.5 and 17.8% are demonstrated for the champion cells using 15 nm thick SnO2 deposited at 50 and 200 degrees C, respectively. The latter gains in fill factor but loses in open-circuit voltage. Markedly, PSCs using the 200 degrees C compact SnO2 retain their initial performance at the maximum power point over 16 h under continuous one-sun illumination in inert atmosphere. Instead, the cell with the 50 degrees C SnO2 shows a decrease in PCE of approximately 50%.
引用
收藏
页码:30367 / 30378
页数:12
相关论文
共 50 条
  • [21] UV Treatment of Low-Temperature Processed SnO2 Electron Transport Layers for Planar Perovskite Solar Cells
    Fumin Li
    Mengqi Xu
    Xingping Ma
    Liang Shen
    Liangxin Zhu
    Yujuan Weng
    Gentian Yue
    Furui Tan
    Chong Chen
    Nanoscale Research Letters, 2018, 13
  • [22] Benefits of fullerene/SnO2 bilayers as electron transport layer for efficient planar perovskite solar cells
    Chen, Yun
    Xu, Cong
    Xiong, Jian
    Zhang, Zheling
    Zhang, Xiuyun
    Yang, Junliang
    Xue, Xiaogang
    Yang, Dong
    Zhang, Jian
    ORGANIC ELECTRONICS, 2018, 58 : 294 - 300
  • [23] Numerical Simulation of Planar Heterojunction Perovskite Solar Cells Based on SnO2 Electron Transport Layer
    Zhao, Peng
    Lin, Zhenhua
    Wang, Jiaping
    Yue, Man
    Su, Jie
    Zhang, Jincheng
    Chang, Jingjing
    Hao, Yue
    ACS APPLIED ENERGY MATERIALS, 2019, 2 (06) : 4504 - 4512
  • [24] Low-temperature electrodeposited crystalline SnO2 as an efficient electron transporting layer for conventional perovskite solar cells
    Chen, Jung-Yao
    Chueh, Chu-Chen
    Zhu, Zonglong
    Chen, Wen-Chang
    Jen, Alex K. -Y.
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2017, 164 : 47 - 55
  • [25] SnO2/ZnO Heterostructure as an Electron Transport Layer for Perovskite Solar Cells
    Carvalho Albuquerque, Diego Aparecido
    Ramos, Raul
    do Prado Ireno, Caio Eduardo
    Martins, Everson
    Durrant, Steven F.
    Ribeiro Bortoleto, Jose Roberto
    MATERIALS RESEARCH-IBERO-AMERICAN JOURNAL OF MATERIALS, 2021, 24
  • [26] Effect of the SnO2 Electron Transport Layer on the Performance of Perovskite Solar Cells
    Akhanuly, Assylan
    Dossayev, Iliyas T.
    Shalenov, Erik O.
    Valagiannopoulos, Constantinos
    Dzhumagulova, Karlygash N.
    Ng, Annie
    Jumabekov, Askhat N.
    2023 7TH IEEE ELECTRON DEVICES TECHNOLOGY & MANUFACTURING CONFERENCE, EDTM, 2023,
  • [27] UV-Sintered Low-Temperature Solution-Processed SnO2 as Robust Electron Transport Layer for Efficient Planar Heterojunction Perovskite Solar Cells
    Huang, Like
    Sun, Xiaoxiang
    Li, Chang
    Xu, Jie
    Xu, Rui
    Du, Yangyang
    Ni, Jian
    Cai, Hongkun
    Li, Juan
    Hu, Ziyang
    Zhang, Jianjun
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (26) : 21909 - 21920
  • [28] 17.78% efficient low-temperature carbon-based planar perovskite solar cells using Zn-doped SnO2 electron transport layer
    Ye, Haibo
    Liu, Zhiyong
    Liu, Xingyue
    Sun, Bo
    Tan, Xianhua
    Tu, Yuxue
    Shi, Tielin
    Tang, Zirong
    Liao, Guanglan
    APPLIED SURFACE SCIENCE, 2019, 478 : 417 - 425
  • [29] Low-temperature processed SnO2 compact layer for efficient mesostructure perovskite solar cells
    Duan, Jinxia
    Xiong, Qiu
    Feng, Bingjie
    Xu, Yang
    Zhang, Jun
    Wang, Hao
    APPLIED SURFACE SCIENCE, 2017, 391 : 677 - 683
  • [30] Plasma-assisted atomic layer deposition of nickel oxide as hole transport layer for hybrid perovskite solar cells
    Koushik, Dibyashree
    Jost, Marko
    Ducinskas, Algirdas
    Burgess, Claire
    Zardetto, Valerio
    Weijtens, Christ
    Verheijen, Marcel A.
    Kessels, Wilhelmus M. M.
    Albrecht, Steve
    Creatore, Mariadriana
    JOURNAL OF MATERIALS CHEMISTRY C, 2019, 7 (40) : 12532 - 12543