Development of ZnO Buffer Layers for As-Doped CdSeTe/CdTe Solar Cells with Efficiency Exceeding 20%

被引:0
作者
Kujovic, Luksa [1 ]
Liu, Xiaolei [1 ]
Togay, Mustafa [1 ]
Abbas, Ali [1 ]
Law, Adam M. [1 ]
Jones, Luke O. [1 ]
Curson, Kieran M. [1 ]
Barth, Kurt L. [1 ]
Bowers, Jake W. [1 ]
Walls, John M. [1 ]
Oklobia, Ochai [2 ]
Lamb, Dan A. [2 ]
Irvine, Stuart J. C. [2 ]
Zhang, Wei [3 ]
Lee, Chungho [3 ]
Nagle, Timothy [3 ]
Lu, Dingyuan [3 ]
Xiong, Gang [3 ]
机构
[1] Loughborough Univ, Ctr Renewable Energy Syst Technol CREST, Wolfson Sch Mech Elect & Mfg Engn, Loughborough LE11 3TU, England
[2] Swansea Univ, Fac Sci & Engn, Ctr Solar Energy Res CSER, Ctr Integrat Semicond Mat CISM, Bay Campus, Swansea SA1 8EN, Wales
[3] Calif Technol Ctr CTC, First Solar Inc, 1035 Walsh Ave, Santa Clara, CA 95050 USA
来源
ADVANCED MATERIALS TECHNOLOGIES | 2025年 / 10卷 / 13期
基金
英国工程与自然科学研究理事会;
关键词
buffer layer; CdSeTe/CdTe; solar cells; ZnO; CADMIUM TELLURIDE; PASSIVATION; CARBON;
D O I
10.1002/admt.202401364
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The front buffer layer plays an important role in CdSeTe/CdTe solar cells and helps achieve high conversion efficiencies. Incorporating ZnO buffer layers in the CdSeTe/CdTe device structure has led to highly efficient and stable solar cells. In this study, the optimization of ZnO buffer layers for CdSeTe/CdTe solar cells is reported. The ZnO films are radio frequency sputter-deposited on SnO2:F coated soda-lime glass substrates. The substrate temperature for the ZnO deposition is varied from 22 to 500 degrees C. An efficiency of 20.74% is achieved using ZnO deposited at 100 degrees C. The ZnO thickness is varied between 40 nm and 75 nm. Following the ZnO depositions, devices were fabricated using First Solar's CdSeTe/CdTe absorber, CdCl2 treatment, and back contact. The optimal ZnO deposition temperature and thickness is 100 degrees C and 65 nm, respectively. The STEM-EDX analysis shows that within the detection limits, chlorine is not detected at the front interface of the devices using ZnO deposited at 22 degrees C and 100 degrees C. However, depositing ZnO at 500 degrees C results in chlorine segregation appearing at the ZnO/CdSeTe boundary. This suggests that chlorine is not needed to passivate the ZnO/CdSeTe interface during the lower temperature depositions. The nanocrystalline ZnO deposited at lower temperatures results in a high-quality interface.
引用
收藏
页数:8
相关论文
共 50 条
[41]   Cooptimization of Adhesion and Power Conversion Efficiency of Organic Solar Cells by Controlling Surface Energy of Buffer Layers [J].
Lee, Inhwa ;
Noh, Jonghyeon ;
Lee, Jung-Yong ;
Kim, Taek-Soo .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (42) :37395-37401
[42]   CdS sensitized pristine and Cd doped ZnO solar cells: Effect of SILAR cycles on optical properties and efficiency [J].
Kokate, Sunita K. ;
Supekar, Abhijit T. ;
Baviskar, Prashant K. ;
Palve, Balasaheb M. ;
Jadkar, Sandesh R. ;
Mohite, Kakasaheb C. ;
Pathan, Habib M. .
MATERIALS SCIENCE IN SEMICONDUCTOR PROCESSING, 2018, 80 :179-183
[43]   Amphiphilic fullerene/ZnO hybrids as cathode buffer layers to improve charge selectivity of inverted polymer solar cells [J].
Hu, Ting ;
Chen, Lie ;
Yuan, Kai ;
Chen, Yiwang .
NANOSCALE, 2015, 7 (20) :9194-9203
[44]   Variation in Cell Efficiency of Organic Solar Cells by Illumination Properties of ZnO Electron Transport Layers [J].
Jang, Woong Joo ;
Ahn, Cheol Hyoun ;
Cho, Hyung Koun .
JOURNAL OF NANOELECTRONICS AND OPTOELECTRONICS, 2014, 9 (01) :71-75
[45]   Effects of cathode buffer layers on the efficiency of bulk-heterojunction solar cells (vol 96, 236506, 2010) [J].
Chang, Ching-Chun ;
Lin, Chi-Feng ;
Chiou, Jian-Ming ;
Ho, Tzung-Han ;
Tai, Yian ;
Lee, Jiun-Haw ;
Chen, Yang-Fang ;
Wang, Juen-Kai ;
Chen, Li-Chyong ;
Chen, Kuei-Hsien .
APPLIED PHYSICS LETTERS, 2010, 97 (04)
[46]   Comparison of ZnO buffer layers prepared by spin coating or RF magnetron sputtering for application in inverted organic solar cells [J].
Kim, Han-Ki ;
Chung, Kwun-Bum ;
Kal, Jinha .
JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 778 :487-495
[47]   Solvothermal synthesis of ZnO nanoparticles at low temperatures as cathode buffer layers for polymer solar cells with an inverted device structure [J].
Jie Luo ;
Qian Liu ;
Yong Zhang ;
Wei Zhang ;
Zuyong Feng ;
Peiju Hu .
Journal of Materials Science: Materials in Electronics, 2016, 27 :10650-10657
[48]   A simple strategy passivating ZnO electron transport layers for realizing high efficiency in organic solar cells [J].
Wang, Zhongqiang ;
Wang, Shenjian ;
Yang, Gen ;
Yin, Yabo ;
Zou, Xuefeng ;
Hao, Yuying ;
Wang, Hua ;
Xu, Bingshe ;
Yin, Shougen .
SURFACES AND INTERFACES, 2024, 44
[49]   Application of sputtered TiO2 thin films as HRT buffer layer for high efficiency CdS/CdTe solar cells [J].
Hernandez-Rodriguez, E. ;
Rejon, V. ;
Mis-Fernandez, R. ;
Pena, J. L. .
SOLAR ENERGY, 2016, 132 :64-72
[50]   Cu(InGa)Se2 thin-film solar cells with high resistivity ZnO buffer layers deposited by atomic layer deposition [J].
Chaisitsak, S ;
Sugiyama, T ;
Yamada, A ;
Konagai, M .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1999, 38 (9A) :4989-4992