Layer-effects on electrical and photovoltaic properties of Aurivillius-type Srn-3Bi4TinO3n+3 (n = 3, 5) films grown by pulsed laser deposition

被引:0
作者
Ruirui Cui
Xudong Zhao
Yaosen Ye
Chaoyong Deng
机构
[1] Guiyang University,School of Electronics and Information Engineering
[2] Guizhou University,Key Laboratory of Electronic Functional Composite Materials of Guizhou Province, Department of Electronic Science, College of Big Data and Information Engineering
来源
Journal of Materials Science: Materials in Electronics | 2022年 / 33卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Bi4Ti3O12 (BTO) and Sr2Bi4Ti5O18 (SBT) materials belonging to the Aurivillius family materials were deposited on Pt/Ti/SiO2/Si substrates via pulsed laser deposition technology. The XRD, SEM, EDX, FTIR-ATR, ferroelectric properties, piezoelectric properties, absorption spectra, reflection spectra, and ellipsometry characterization were used to compare the differences between the two materials and find out the relationship between them. The relative atomic displacement of the two materials, calculated from the atomic coordinates, which explain the poor ferroelectric properties of SBT than BTO materials. Computing of the absorption spectra revealed that the band gap of the BTO sample is 2.51 eV and the SBT sample is 2.23 eV, probably due to the greater stress of the BTO’s fluorite structure to the oxygen octahedra. In addition, the band gap (2.48 eV) and the density of state of the BTO were calculated by first principles method to assist in the analysis of the experimental data. Through the comparison of the two materials, the reason of the difference in the performance of Aurivillius family materials is analyzed from the atomic level, which provides the theoretical basis for the application of Aurivillius family materials in random access memory, sensor and optical devices.
引用
收藏
页码:25318 / 25328
页数:10
相关论文
共 210 条
[1]  
Yang DX(2022)Toward stable and efficient perovskite light-emitting diodes Adv. Funct. Mater. 32 2109495-42471
[2]  
Zhao B(2022)Impact of fluorine substitution in organic functional materials for perovskite solar cell Dyes Pigments 198 42449-27261
[3]  
Yang T(2022)Developing electromagnetic functional materials for green building J. Build. Eng. 45 27240-4540
[4]  
Lai RC(2020)Nonvolatile multistates memories for high-density data storage ACS Appl. Mater. Interfaces 12 4529-13378
[5]  
Lan DC(2022)Perovskite oxides as active materials in novel alternatives to well-known technologies: a review Ceram. Int. 48 16-24162
[6]  
Friend RH(2022)Influence of oxygen vacancy defects on Aurivillius phase layered perovskite oxides of bismuth towards photocatalytic environmental remediation Nanotechnology 33 13369-15184
[7]  
Di DW(2022)Bandgap tuning in samarium-modified bismuth titanate by site engineering using iron and cobalt co-doping for photovoltaic application J. Alloys. Compd. 908 24156-8240
[8]  
Sathiyan G(2022)Structural and electrical properties of perovskite (Na J. Electron. Mater. 51 15175-4094
[9]  
Wang HX(2018)Bi Appl. Sci. 8 8233-306
[10]  
Chen C(2022)) Inorg. Chem. 61 4089-6972