Catalytic Oxidation of Phosphine by Aqueous Copper-Ammonia Complexes

被引:1
作者
Borangazieva, Akbope K. [1 ]
Boleubayev, Yerzhan A. [1 ]
Ibraimova, Zhuldyz U. [1 ]
Itkulova, Sholpan S. [1 ]
Polimbetova, Gulshara S. [1 ]
机构
[1] DV Sokolsky Inst Fuel Catalysis & Electrochem, Alma Ata 050010, Kazakhstan
关键词
phosphine; catalytic oxidation; aqueous copper-ammonia complexes; furnace gas of phosphorus production; purification; carbon monoxide; experimental study; PHOSPHORUS TAIL GAS; CIRCULAR HYDROGEN; ALCOHOL-SOLUTIONS; PURIFICATION; ADSORPTION; REMOVAL; PH3; CUCL2; H2S;
D O I
10.3390/catal13020271
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The furnace gas resulting from the electrothermal production of yellow phosphorus contains up to 95% CO, 2% O-2, 2% H-2, and 0.3-4.0% impurities, including phosphine (PH3), yellow phosphorus (P-4), and hydrogen sulphide (H2S), which are characterized by flammability, explosion hazardousness, corrosiveness, and high toxicity. The presence of toxic impurities does not allow the use of waste gases from phosphorus production, which are mainly composed of valuable carbon monoxide, as chemical raw materials and/or process fuel. The authors propose a method for the purification of furnace gas from the main toxic component, phosphine, by its oxidisation using aqueous copper-ammonia complexes as a catalyst. This approach allows the cleaning process to be conducted under mild conditions. The degree of purification of the model furnace gas from P components is 90-99%, depending on the process conditions.
引用
收藏
页数:14
相关论文
共 31 条
[1]  
Averill B.A., 2012, General Chemistry: Principles, Patterns, and Applications
[2]   Reaction Mechanism of Simultaneous Removal of H2S and PH3 Using Modified Manganese Slag Slurry [J].
Bao, Jiacheng ;
Wang, Xialing ;
Li, Kai ;
Wang, Fei ;
Wang, Chi ;
Song, Xin ;
Sun, Xin ;
Ning, Ping .
CATALYSTS, 2020, 10 (12) :1-12
[3]   A clean and simple method for deprotection of phosphines from borane complexes [J].
Demchuk, Oleg M. ;
Jasinski, Radomir ;
Strzelecka, Dorota ;
Dziuba, Kamil ;
Kula, Karolina ;
Chrzanowski, Jacek ;
Krasowska, Dorota .
PURE AND APPLIED CHEMISTRY, 2018, 90 (01) :49-62
[4]  
Dorfman Y.A., 1981, LIQUID PHASE CATALYS, P364
[5]   Cu/HZSM-5 Sorbent Treated by NH3 Plasma for Low-Temperature Simultaneous Adsorption-Oxidation of H2S and PH3 [J].
Feng, Jiayu ;
Wang, Fei ;
Wang, Chi ;
Li, Kai ;
Sun, Xin ;
Ning, Ping .
ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (21) :24670-24681
[6]  
Gosteva A. N., 2021, IOP Conference Series: Materials Science and Engineering, V1079, DOI 10.1088/1757-899X/1079/6/062014
[7]   Free-radical addition of phosphine to vinyl ethers: atom-economic synthesis of tris(2-organyloxyethyl)phosphines and their derivatives [J].
Gusarova, Nina K. ;
Verkhoturova, Svetlana I. ;
Kazantseva, Tatyana I. ;
Mikhailenko, Valentina L. ;
Arbuzova, Svetlana N. ;
Trofimov, Boris A. .
MENDELEEV COMMUNICATIONS, 2011, 21 (01) :17-18
[8]   A first-principles investigation of PH3 gas adsorption on the graphitic carbon nitride sheets modified with V/P, Nb/P, and Ta/P elements [J].
Habibi-Yangjeh, Aziz ;
Basharnavaz, Hadi ;
Kamali, Seyed Hossein ;
Nematollahzadeh, Ali .
MATERIALS CHEMISTRY AND PHYSICS, 2021, 269 (269)
[9]  
Hartley F., 1983, EQUILIBRIUM SOLUTION, P345
[10]  
IBRAIMOVA ZU, 2021, DOKL NAT AKAD NAUK R, P136, DOI DOI 10.32014/2021.2518-1483.92