Influence of different concentrations of SbCl3 salt on the properties of Sb2S3 nanobars prepared by the solvothermal method for solar cell application

[1]  F. Wen,et al.  Broadband photodetector of high quality Sb2S3 nanowire grown by chemical vapor deposition , 2021 .

[2]  A. Pandikumar,et al.  Facile preparation of novel Sb2S3 nanoparticles/rod-like α-Ag2WO4 heterojunction photocatalysts: Continuous modulation of band structure towards the efficient removal of organic contaminants , 2020 .

[3]  R. Ahmed,et al.  First-principles study of electronic and optical properties of antimony sulphide thin film , 2020, Optik.

[4]  A. K. Jassal,et al.  Indirect influence of alkyl substituent on sigma-hole interactions: The case study of antimony(III) diphenyldithiophosphates with covalent Sb-S and non-covalent Sb⋯S pnictogen bonds , 2019, Polyhedron.

[5]  B. Shin,et al.  Microstructural Evolution of Hybrid Perovskites Promoted by Chlorine and its Impact on the Performance of Solar Cell , 2019, Scientific Reports.

[6]  Ming Jia,et al.  Fabrication of Sb2S3 thin films by sputtering and post-annealing for solar cells , 2019, Ceramics International.

[7]  S. Çakmak,et al.  Effect of oxygen vacancy on Sb3+, Nb3+ and V3+ doped KTaO3 compounds , 2019, Optik.

[8]  Hongwei Lei,et al.  A novel in situ hydrothermal preparation route for Sb2S3 and its solar cell application , 2018, Materials Letters.

[9]  Shangfeng Yang,et al.  Sequential deposition route to efficient Sb2S3 solar cells , 2018 .

[10]  W. Luo,et al.  Imbedding ultrafine Sb2S3 nanoparticles in mesoporous carbon sphere for high-performance lithium-ion battery , 2018, Electrochimica Acta.

[11]  Tao Chen,et al.  Phosphotungstic Acid Regulated Chemical Bath Deposition of Sb2 S3 for High-Efficiency Planar Heterojunction Solar Cell , 2018, Energy Technology.

[12]  Shichong Xu,et al.  One pot synthesis of Sb2S3 nanocrystalline films through a PVP-assisted hydrothermal process , 2018, Applied Surface Science.

[13]  Si-Hyun Park,et al.  Rapid growth of Sb 2 S 3 thin films by chemical bath deposition with ethylenediamine tetraacetic acid additive , 2018, Applied Surface Science.

[14]  T. Kirchartz,et al.  Spin-coated planar Sb2S3 hybrid solar cells approaching 5% efficiency , 2018, Beilstein journal of nanotechnology.

[15]  Jinsong Hu,et al.  Manipulation of facet orientation in hybrid perovskite polycrystalline films by cation cascade , 2018, Nature Communications.

[16]  M. Deshpande,et al.  Study of Sb2S3 thin films deposited by SILAR method , 2018 .

[17]  Jiang Tang,et al.  Sb2S3 Solar Cells , 2018 .

[18]  Lu-Yin Lin,et al.  Electrodeposition of Sb2S3 light absorbers on TiO2 nanorod array as photocatalyst for water oxidation , 2018 .

[19]  Changgui Lin,et al.  Fast Ag-Ion-Conducting GeS2–Sb2S3–AgI Glassy Electrolytes with Exceptionally Low Activation Energy , 2018 .

[20]  Q. Gong,et al.  Sb2S3 thin films prepared by vulcanizing evaporated metallic precursors , 2017 .

[21]  M. Wark,et al.  Controlling the crystallization and grain size of sequentially deposited planar perovskite films via the permittivity of the conversion solution , 2017 .

[22]  Jian-qiu Deng,et al.  Sb2S3 single crystal nanowires with comparable electrochemical properties as an anode for sodium ion batteries , 2017 .

[23]  S. Qiao,et al.  Sb2S3 thickness-dependent lateral photovoltaic effect and time response observed in glass/FTO/CdS/Sb2S3/Au structure. , 2017, Optics express.

[24]  M. Pal,et al.  Surfactant-mediated self-assembly of Sb_2S_3 nanorods during hydrothermal synthesis , 2017 .

[25]  S. Shaji,et al.  Antimony sulfide thin films prepared by laser assisted chemical bath deposition , 2017 .

[26]  Mingmei Wu,et al.  Completely <001> oriented anatase TiO2 nanoarrays: topotactic growth and orientation-related efficient photocatalysis. , 2015, Nanoscale.

[27]  B. Yan,et al.  Enhanced azo dye decolorization through charge transmission by σ-Sb3+-azo complexes on amorphous Sb2S3 under visible light irradiation , 2019, Applied Catalysis B: Environmental.

[28]  Hassan Haes Alhelou,et al.  An Optimal Photovoltaic Conversion System for Future Smart Grids , 2018 .