Rapid thermal evaporation for cadmium selenide thin-film solar cells

Kanghua Li1, Lin Xiang1, Boxiang Song1, Rokas Kondrotas2, Chong Wang1, Yue Lu1, Xiaosheng Yang1, Chao Chen1, Jiang Tang1
1Sargent Joint Research Center, Wuhan National Laboratory for Optoelectronics (WNLO), School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, China
2State Research Institute Center for Physical Sciences and Technology, Vilnius, Lithuania

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Hermle M, Feldmann F, Bivour M, Goldschmidt J C, Glunz S W. Passivating contacts and tandem concepts: Approaches for the highest silicon-based solar cell efficiencies. Applied Physics Reviews, 2020, 7(2): 021305–021312

Meillaud F, Shah A, Droz C, Vallat-Sauvain E, Miazza C. Efficiency limits for single-junction and tandem solar cells. Solar Energy Materials and Solar Cells, 2006, 90(18–19): 2952–2959

Rickus D B E. The CdSe thin-film solar cell. Conference Record of the IEEE Photovoltaic Specialists Conference, 1980, 1: 629–632

Lu S, Chen C, Tang J. Possible top cells for next-generation Si-based tandem solar cells. Frontiers of Optoelectronics, 2020, 13(3): 246–255

Yamaguchi M, Lee K H, Araki K, Kojima N. A review of recent progress in heterogeneous silicon tandem solar cells. Journal of Physics D, Applied Physics, 2018, 51(13): 133002–133015

Todorov T, Gunawan O, Guha S. A road towards 25% efficiency and beyond: perovskite tandem solar cells. Molecular Systems Design & Engineering, 2016, 1(4): 370–376

Todorov T K, Bishop D M, Lee Y S. Materials perspectives for next-generation low-cost tandem solar cells. Solar Energy Materials and Solar Cells, 2018, 180: 350–357

Bakiyaraj G, Dhanasekaran R. Effect of annealing on the properties of chemical bath deposited nanorods of CdSe thin films. Crystal Research and Technology, 2012, 47(9): 960–966

Bagheri B, Kottokkaran R, Poly L P, Sharikadze S, Dalal V. Efficient heterojunction thin film CdSe solar cells deposited using thermal evaporation. In: Proceedings of IEEE 46th Photovoltaic Specialists Conference (PVSC). Chicago: IEEE, 2019, 1822–1825

Che S B, Nomura I, Kikuchi A, Shimomura K, Kishino K J P S S. Visible light emitting diode with ZnCdSe/BeZnTe superlattices as an active layer and MgSe/BeZnTe superlattices as a p-cladding layer. Physica Status Solidi (B): Basic Solid State Physics, 2002, 229(2): 1001–1004

Jia S, Yun X, An Y, Li P, Xiao J. Fabrication and characterization of photo-detector based on CdSe0.5S0.5 quantum dots. Asia Communications & Photonics Conference, 2013, 2013: 978–981

Mahawela P, Jeedigunta S, Vakkalanka S, Ferekides C S, Morel D L J T S F. Transparent high-performance CdSe thin-film solar cells. Thin Solid Films, 2005, 480–481(3): 466–470

Wang C, Du X, Wang S, Deng H, Chen C, Niu G, Pang J, Li K, Lu S, Lin X, Song H, Tang J. Sb2Se3 film with grain size over 10 µm toward X-ray detection. Frontiers of Optoelectronics, 2020, doi:https://doi.org/10.1007/s12200-020-1064-5

Shin Y M, Lee C S, Shin D H, Kwon H S, Park B G, Ahn B T. Surface modification of CIGS film by annealing and its effect on the band structure and photovoltaic properties of CIGS solar cells. Current Applied Physics, 2015, 15(1): 18–24

Song H, Zhan X, Li D, Zhou Y, Yang B, Zeng K, Zhong J, Miao X, Tang J. Rapid thermal evaporation of Bi2S3 layer for thin film photovoltaics. Solar Energy Materials and Solar Cells, 2016, 146: 1–7

Xue D J, Liu S C, Dai C M, Chen S, He C, Zhao L, Hu J S, Wan L J. GeSe thin-film solar cells fabricated by self-regulated rapid thermal sublimation. Journal of the American Chemical Society, 2017, 139 (2): 958–965

Somorjai G A. Vapor pressure and solid-vapor equilibrium of CdSe (cadmium selenide). Journal of Physical Chemistry, 1961, 65(6): 1059–1061

Li K, Kondrotas R, Chen C, Lu S, Wen X, Li D, Luo J, Zhao Y, Tang J. Improved efficiency by insertion of Zn1−xMgxO through sol-gel method in ZnO/Sb2Se3 solar cell. Solar Energy, 2018, 167: 10–17

Major J D, Proskuryakov Y Y, Durose K. Impact of CdTe surface composition on doping and device performance in close space sublimation deposited CdTe solar cells. Progress in Photovoltaics, 2013, 21(4): 436–443

Gnatenko Y P, Bukivskij P M, Faryna I O, Opanasyuk A S, Ivashchenko M M. Photoluminescence of high optical quality CdSe thin films deposited by close-spaced vacuum sublimation. Journal of Luminescence, 2014, 146: 174–177

Tian L, Yang H, Ding J, Li Q, Mu Y, Zhang Y. Synthesis of the wheat-like CdSe/CdTe thin film heterojunction and their photovoltaic applications. Current Applied Physics, 2014, 14(6): 881–885

Chen C, Zhao Y, Lu S, Li K, Li Y, Yang B, Chen W, Wang L, Li D, Deng H, Yi F, Tang J. Accelerated optimization of TiO2/Sb2Se3 thin film solar cells by high-throughput combinatorial approach. Advanced Energy Materials, 2017, 7(20): 1700866

Parsons R B, Wardzynski W, Yoffe A D. The optical properties of single crystals of cadmium selenide. Proceedings of the Royal Society of London. Series A, Mathematical and Physical Sciences, 1961, 262(1308): 120–131

Rosly H N, Rahman K S, Harif M N, Doroody C, Isah M, Misran H, Amin N. Annealing temperature assisted microstructural and optoelectrical properties of CdSe thin film grown by RF magnetron sputtering. Superlattices and Microstructures, 2020, 148: 106716

Ni Z H, Kong B, Zeng T X, Yang H, He Z Y. The effects of the intrinsic defects on the electronic, magnetic and optical properties for bulk and monolayer CdSe: first-principles GGA + U investigations. Materials Research Express, 2019, 6(10): 105903

Murali K R, Srinivasan K, Trivedi D C. Vacuum evaporated CdSe thin films and their characteristics. Materials Letters, 2005, 59(1): 15–18

Murali K R, Srinivasan K, Trivedi D C. Structural and photoelectrochemical properties of CdSe thin films deposited by the vacuum evaporation technique. Materials Science and Engineering B, 2004, 111(1): 1–4

Kosyak V, Opanasyuk A, Bukivskij P M, Gnatenko Y P. Study of the structural and photoluminescence properties of CdTe poly-crystalline films deposited by close-spaced vacuum sublimation. Journal of Crystal Growth, 2010, 312(10): 1726–1730

Hariskos D, Powalla M, Chevaldonnet N, Lincot D, Schindler A. Chemical bath deposition of CdS buffer layer: prospects of increasing materials yield and reducing waste. Thin Solid Films, 387(1–2): 179–181

Leng M Y, Luo M, Chen C, Qin S K, Chen J, Zhong J, Tang J. Selenization of Sb2Se3 absorber layer: an efficient step to improve device performance of CdS/Sb2Se3 solar cells. Applied Physics Letters, 2014, 105(8): 083905

Hu W D, Dall’Agnese C, Wang X F, Chen G, Li M Z, Song J X, Wei Y J, Miyasaka T. Copper iodide-PEDOT:PSS double hole transport layers for improved efficiency and stability in perovskite solar cells. Journal of Photochemistry and Photobiology A Chemistry, 2018, 357: 36–40

Voswinckel S, Mikolajick T, Wesselak V. Influence of the active leakage current pathway on the potential induced degradation of CIGS thin-film solar modules. Solar Energy, 2020, 197: 455–461

Wang L, Li D B, Li K, Chen C, Deng H X, Gao L, Zhao Y, Jiang F, Li L, Huang F, He Y, Song H, Niu G, Tang J. Stable 6%-efficient Sb2Se3 solar cells with a ZnO buffer layer. Nature Energy, 2017, 2 (4): 17046–17053