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Antimony doped CsPbI2Br for high-stability all-inorganic perovskite solar cells
by
Zhu, Mengfei
, Wang, Yaoda
, Qin, Lina
, Xia, Yuren
, Jin, Zhong
, Hong, Daocheng
, Tie, Zuoxiu
, Liang, Junchuan
, Tian, Yuxi
in
Antimony
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Carrier lifetime
/ Carrier recombination
/ Cesium
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Control equipment
/ Crystal defects
/ Crystal growth
/ Crystal lattices
/ Crystals
/ Doping
/ Efficiency
/ Electrodes
/ Electronegativity
/ Energy
/ Energy conversion efficiency
/ Iodine
/ Lead
/ Manufacturing industry
/ Materials Science
/ Nanotechnology
/ Perovskites
/ Phase stability
/ Photovoltaic cells
/ Production costs
/ Research Article
/ Solar cells
/ Surface defects
/ Thermal stability
2024
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Antimony doped CsPbI2Br for high-stability all-inorganic perovskite solar cells
by
Zhu, Mengfei
, Wang, Yaoda
, Qin, Lina
, Xia, Yuren
, Jin, Zhong
, Hong, Daocheng
, Tie, Zuoxiu
, Liang, Junchuan
, Tian, Yuxi
in
Antimony
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Carrier lifetime
/ Carrier recombination
/ Cesium
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Control equipment
/ Crystal defects
/ Crystal growth
/ Crystal lattices
/ Crystals
/ Doping
/ Efficiency
/ Electrodes
/ Electronegativity
/ Energy
/ Energy conversion efficiency
/ Iodine
/ Lead
/ Manufacturing industry
/ Materials Science
/ Nanotechnology
/ Perovskites
/ Phase stability
/ Photovoltaic cells
/ Production costs
/ Research Article
/ Solar cells
/ Surface defects
/ Thermal stability
2024
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Antimony doped CsPbI2Br for high-stability all-inorganic perovskite solar cells
by
Zhu, Mengfei
, Wang, Yaoda
, Qin, Lina
, Xia, Yuren
, Jin, Zhong
, Hong, Daocheng
, Tie, Zuoxiu
, Liang, Junchuan
, Tian, Yuxi
in
Antimony
/ Atomic/Molecular Structure and Spectra
/ Biomedicine
/ Biotechnology
/ Carrier lifetime
/ Carrier recombination
/ Cesium
/ Chemistry and Materials Science
/ Condensed Matter Physics
/ Control equipment
/ Crystal defects
/ Crystal growth
/ Crystal lattices
/ Crystals
/ Doping
/ Efficiency
/ Electrodes
/ Electronegativity
/ Energy
/ Energy conversion efficiency
/ Iodine
/ Lead
/ Manufacturing industry
/ Materials Science
/ Nanotechnology
/ Perovskites
/ Phase stability
/ Photovoltaic cells
/ Production costs
/ Research Article
/ Solar cells
/ Surface defects
/ Thermal stability
2024
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Antimony doped CsPbI2Br for high-stability all-inorganic perovskite solar cells
Journal Article
Antimony doped CsPbI2Br for high-stability all-inorganic perovskite solar cells
2024
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Overview
All-inorganic perovskites, adopting cesium (Cs
+
) cation to completely replace the organic component of A-sites of hybrid organic–inorganic halide perovskites, have attracted much attention owing to the excellent thermal stability. However, all-inorganic iodine-based perovskites generally exhibit poor phase stability in ambient conditions. Herein, we propose an efficient strategy to introduce antimony (Sb
3+
) into the crystalline lattices of CsPbI
2
Br perovskite, which can effectively regulate the growth of perovskite crystals to obtain a more stable perovskite phase. Due to the much smaller ionic radius and lower electronegativity of trivalent Sb
3+
than those of Pb
2+
, the Sb
3+
doping can decrease surface defects and suppress charge recombination, resulting in longer carrier lifetime and negligible hysteresis. As a result, the all-inorganic perovskite solar cells (PSCs) based on 0.25% Sb
3+
doped CsPbI
2
Br light absorber and screen-printable nanocarbon counter electrode achieved a power conversion efficiency of 11.06%, which is 16% higher than that of the control devices without Sb
3+
doping. Moreover, the Sb
3+
doped all-inorganic PSCs also exhibited greatly improved endurance against heat and moisture. Due to the use of low-cost and easy-to-process nanocarbon counter electrodes, the manufacturing process of the all-inorganic PSCs is very convenient and highly repeatable, and the manufacturing cost can be greatly reduced. This work offers a promising approach to constructing high-stability all-inorganic PSCs by introducing appropriate lattice doping.
Publisher
Tsinghua University Press
Subject
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