Doping Strategies in Sb2S3 Thin Films for Solar Cells

被引:86
作者
Myagmarsereejid, Purevlkham [1 ]
Ingram, Malaika [1 ]
Batmunkh, Munkhbayar [1 ]
Zhong, Yu Lin [1 ]
机构
[1] Griffith Univ, Sch Environm & Sci, Ctr Catalysis & Clean Energy CCCE, Gold Coast, Qld 4222, Australia
基金
澳大利亚研究理事会;
关键词
doping; photovoltaic; Sb; S-2; (3); solar cells; thin film; ELECTRICAL-PROPERTIES; ELECTRONIC-PROPERTIES; METAL CHALCOGENIDE; OPTICAL-PROPERTIES; PHOTOVOLTAIC CELL; DEPOSITED SB2S3; PURE SB2S3; ABSORBER; SULFIDE; PERFORMANCE;
D O I
10.1002/smll.202100241
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Sb2S3 is an attractive solar absorber material that has garnered tremendous interest because of its fascinating properties for solar cells including suitable band gap, high absorption coefficient, earth abundance, and excellent stability. Over the past several years, intensive efforts have been made to enhance the photovoltaic efficiencies of Sb2S3 solar cells using many promising approaches including interfacial engineering, surface passivation, additive engineering, and band-gap engineering of the charge transport layers and active light absorbing Sb2S3 materials. Recently, doping strategies in Sb2S3 light absorbers have gained attention as they promise to play important roles in controlling band gap, regulating film morphology, and passivating grain boundaries, and thus resulting in enhanced carrier transport, which is one of the most challenging issues in this cutting-edge research field. In this review, after a brief introduction to Sb2S3, an overview of Sb2S3 solar cells and their fundamental properties are provided. Recent advances in doping strategies in Sb2S3 thin films and solar cells are then discussed to provide in-depth understanding of the effects of various dopants on the photovoltaic properties of Sb2S3 materials. In conclusion, the personal perspectives and outlook to the future development of Sb2S3 solar cells are provided.
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页数:17
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共 104 条
[1]   The metallurgy of antimony [J].
Anderson, Corby G. .
CHEMIE DER ERDE-GEOCHEMISTRY, 2012, 72 :3-8
[2]   Structural and optical properties of amorphous Sb2S3 thin films deposited by vacuum thermal evaporation method [J].
Aousgi, F. ;
Kanzari, M. .
CURRENT APPLIED PHYSICS, 2013, 13 (01) :262-266
[3]   Phase modification ky instantaneous heat treatment of Sb2S3 films and their potential for photothermal optical recording [J].
Arun, P ;
Vedeshwar, AG .
JOURNAL OF APPLIED PHYSICS, 1996, 79 (08) :4029-4036
[4]   Plasmonic Gold Nanostars Incorporated into High-Efficiency Perovskite Solar Cells [J].
Batmunkh, Munkhbayar ;
Macdonald, Thomas J. ;
Peveler, William J. ;
Bati, Abdulaziz S. R. ;
Carmalt, Claire J. ;
Parkin, Ivan P. ;
Shapter, Joseph G. .
CHEMSUSCHEM, 2017, 10 (19) :3750-3753
[5]   Nanocarbons for mesoscopic perovskite solar cells [J].
Batmunkh, Munkhbayar ;
Shearer, Cameron J. ;
Biggs, Mark J. ;
Shapter, Joseph G. .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (17) :9020-9031
[6]   High-efficiency crystalline silicon solar cells: status and perspectives [J].
Battaglia, Corsin ;
Cuevas, Andres ;
De Wolf, Stefaan .
ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (05) :1552-1576
[7]   Electronic structure and optical properties of Sb2S3 crystal [J].
Ben Nasr, T. ;
Maghraoui-Meherzi, H. ;
Ben Abdallah, H. ;
Bennaceur, R. .
PHYSICA B-CONDENSED MATTER, 2011, 406 (02) :287-292
[8]   ZONE-REFINING OF ANTIMONY TRISULFIDE [J].
BOHAC, P ;
KAUFMANN, P .
MATERIALS RESEARCH BULLETIN, 1975, 10 (07) :613-622
[9]   Hole Transport and Recombination in All-Solid Sb2S3-Sensitized TiO2 Solar Cells Using CuSCN As Hole Transporter [J].
Boix, Pablo P. ;
Larramona, Gerardo ;
Jacob, Alain ;
Delatouche, Bruno ;
Mora-Sero, Ivan ;
Bisquert, Juan .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (01) :1579-1587
[10]   From Flat to Nanostructured Photovoltaics: Balance between Thickness of the Absorber and Charge Screening in Sensitized Solar Cells [J].
Boix, Pablo P. ;
Lee, Yong Hui ;
Fabregat-Santiago, Francisco ;
Im, Sang Hyuk ;
Mora-Sero, Ivan ;
Bisquert, Juan ;
Seok, Sang Il .
ACS NANO, 2012, 6 (01) :873-880