Study on the Property of Electron-Transport Layer in the Doped Formamidinium Lead Iodide Perovskite Based on DFT

被引:27
作者
Diao, Xin-Feng [1 ,3 ]
Tang, Yan-lin [1 ,2 ]
Xie, Quan [1 ]
Chen, De-Liang [3 ]
Li, Shi-xiong [3 ]
Liu, Gao-Fu [3 ]
机构
[1] Guizhou Univ, Sch Big Data & Informat Engn, Guiyang 550025, Guizhou, Peoples R China
[2] Guizhou Univ, Sch Phys, Guiyang 550025, Guizhou, Peoples R China
[3] Guizhou Normal Coll, Sch Phys & Elect Sci, Guiyang 550018, Guizhou, Peoples R China
基金
中国国家自然科学基金;
关键词
INTERFACIAL CHARGE-TRANSFER; SENSITIZED SOLAR-CELLS; POTENTIAL DISTRIBUTION; CARRIER MOBILITY; HOLE CONDUCTOR; BAND-GAP; EFFICIENT; FILMS; RECOMBINATION; PHOTOVOLTAICS;
D O I
10.1021/acsomega.9b03015
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The electron-transport layer in planar perovskite solar cells plays an important role in improving photoelectric conversion efficiency. At present, the main electronic transmission materials in perovskite solar cells include TiO2, ZnO, WO3, ZrO2, SnO2, ZnO2, etc. This work mainly studies the electron-transport characteristics of six different electron-transport layers in perovskite solar cells. Based on the density functional theory, the electron-transport model of a solar cell doped with formamidinium iodide lead compound perovskite under six different electron-transport materials was constructed, and their effective electron mass and the mobility of carriers were obtained by optimizing the structure and theoretical calculation. The results show that the mobility of electrons in TiO2 crystal is slightly higher than that of FA(0.75)Cs(0.25)Sn(0.5)Pb(0.5)I(3) carriers. Because of their high matching degree, it can be reasonably explained that titanium dioxide has been widely used in perovskite solar cells and achieved higher photoelectric conversion efficiency. In addition, the mobility of carriers in WO3 and SnO2 crystals is also high, so they also have great advantages in carrier transport. Due to its abundant, nontoxic, and low-pollution content, TiO2 has become the most widely used electronic transmission layer material for solar cells. Furthermore, we have explored eight new semiconductor materials that have not yet been used in perovskite solar cells as the electron-transport layer. The calculation results show that Ta2O5 and Bi2O3 are promising materials for the electron-transport layer. This study provides a theoretical basis for seeking better electronic transmission materials for solar cells in the future.
引用
收藏
页码:20024 / 20035
页数:12
相关论文
共 62 条
[51]   Perovskites: The Emergence of a New Era for Low-Cost, High-Efficiency Solar Cells [J].
Snaith, Henry J. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2013, 4 (21) :3623-3630
[52]   Electron-Hole Diffusion Lengths Exceeding 1 Micrometer in an Organometal Trihalide Perovskite Absorber [J].
Stranks, Samuel D. ;
Eperon, Giles E. ;
Grancini, Giulia ;
Menelaou, Christopher ;
Alcocer, Marcelo J. P. ;
Leijtens, Tomas ;
Herz, Laura M. ;
Petrozza, Annamaria ;
Snaith, Henry J. .
SCIENCE, 2013, 342 (6156) :341-344
[53]   Influence of electrical potential distribution, charge transport, and recombination on the photopotential and photocurrent conversion efficiency of dye-sensitized nanocrystalline TiO2 solar cells:: A study by electrical impedance and optical modulation techniques [J].
van de Lagemaat, J ;
Park, NG ;
Frank, AJ .
JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (09) :2044-2052
[54]   SOFT SELF-CONSISTENT PSEUDOPOTENTIALS IN A GENERALIZED EIGENVALUE FORMALISM [J].
VANDERBILT, D .
PHYSICAL REVIEW B, 1990, 41 (11) :7892-7895
[55]   Sb2O3 modified PVDF-CTFE electrospun fibrous membrane as a safe lithiumion-battery separator [J].
Wang, Lijuan ;
Wang, Zhonghui ;
Sun, Yi ;
Liang, Xin ;
Xiang, Hongfa .
JOURNAL OF MEMBRANE SCIENCE, 2019, 572 :512-519
[56]   IMPERFECTIONS IN AMORPHOUS CHALCOGENIDES .4. A MODEL OF ELECTRICAL-CONDUCTION PROCESSES IN AMORPHOUS AND CRYSTALLINE IN2SE3 [J].
WATANABE, Y ;
KANEKO, S ;
KAWAZOE, H ;
YAMANE, M .
PHYSICAL REVIEW B, 1989, 40 (05) :3133-3142
[57]   A promising two-dimensional solar cell donor: Black arsenic-phosphorus monolayer with 1.54 eV direct bandgap and mobility exceeding 14,000 cm2 V-1 s-1 [J].
Xie, Meiqiu ;
Zhang, Shengli ;
Cai, Bo ;
Huang, Yong ;
Zou, Yousheng ;
Guo, Bin ;
Gu, Yu ;
Zeng, Haibo .
NANO ENERGY, 2016, 28 :433-439
[58]   Long-Range Balanced Electron- and Hole-Transport Lengths in Organic-Inorganic CH3NH3PbI3 [J].
Xing, Guichuan ;
Mathews, Nripan ;
Sun, Shuangyong ;
Lim, Swee Sien ;
Lam, Yeng Ming ;
Graetzel, Michael ;
Mhaisalkar, Subodh ;
Sum, Tze Chien .
SCIENCE, 2013, 342 (6156) :344-347
[59]   Effects of hydroxyl radicals and oxygen species on the 4-chlorophenol degradation by photoelectrocatalytic reactions with TiO2-film electrodes [J].
Yang, Juan ;
Dai, Jun ;
Chen, Chuncheng ;
Zhao, Jincai .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY A-CHEMISTRY, 2009, 208 (01) :66-77
[60]   Electric potential distribution and short-range screening in nanoporous TiO2 electrodes [J].
Zaban, A ;
Meier, A ;
Gregg, BA .
JOURNAL OF PHYSICAL CHEMISTRY B, 1997, 101 (40) :7985-7990