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Mechanism of phosphorus removal from Si–Al melt by hydrogen.

Authors :
Li, Jingwei
Yu, Wenqing
Lin, Yinhe
Li, Juncheng
Ban, Boyuan
Chen, Jian
Guo, Fuling
Shi, Chengwu
Tang, Wenming
Source :
International Journal of Hydrogen Energy. Jun2024, Vol. 71, p683-690. 8p.
Publication Year :
2024

Abstract

Phosphorus is a critical impurity in solar cell that deteriorates the photovoltaic convection efficiency of solar cell. Phosphorus removal from metallurgical grade silicon by injecting H 2 and Ar-50%H 2 mixture during the Al–Si solvent refining was investigated. With gas injecting into the Al–Si melt, the phosphorus concentration in the refined Si decreased with an increase of the injecting time. When the gas injecting time was 2.5 h, the removal fraction of phosphorus increased to 93%, an improvement of 63% compared with 57% without Ar–H 2 injection. The effects of H 2 proportion, gas refining temperature, and Si proportion in the alloy were investigated. The kinetics of phosphorus removal with Ar–H 2 injection were clarified. The mass transfer coefficient of phosphorus was 9.07 × 10−9 m/s during the Ar–H 2 -assisted solvent refining process. Three mechanisms of phosphorus removal were discussed for this gas-solvent composite refining process. These results demonstrate that H 2 or Ar–H 2 gas injecting treatment is an effective strategy to further improve the phosphorus removal and reduce the cost during Al–Si solvent refining. • The removal fraction of P increased to 93% with Ar–H 2 injection refining process. • The mass transfer coefficient of P was 9.07 × 10−9 m/s during solvent refining. • The kinetics of P removal with Ar–H 2 injection were clarified. • H 2 injection is an effective way to improve the P removal during solvent refining. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03603199
Volume :
71
Database :
Academic Search Index
Journal :
International Journal of Hydrogen Energy
Publication Type :
Academic Journal
Accession number :
177879912
Full Text :
https://doi.org/10.1016/j.ijhydene.2024.05.103