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Boosting the VOCs purification over high-performance α-MnO2 separated from spent lithium-ion battery: Synergistic effect of metal doping and acid treatment.

Authors :
Min, Xin
Guo, Mingming
Li, Kan
Gu, Jia-nan
Hu, Xiaofang
Jia, Jinping
Sun, Tonghua
Source :
Separation & Purification Technology. Aug2022, Vol. 295, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

[Display omitted] • Manganese-based compound is high-selectively recovered from spent LIBs. • α-MnO 2 catalysts are prepared using the manganese-based compound as metal precursor. • SLMB-MnO 2 -2 exhibits better catalytic performance compared to other catalysts. • The copper dopant and acid treatment play a synergistic role in the catalytic activity. Spent lithium-ion batteries and VOCs both pose a significant threat to the environment and human health. In this work, a series of high-performance α-MnO 2 catalysts with metal dopant and acid treatment are synthesized from acid leaching solution of cathode materials, which were separated from spent lithium-ion manganese battery (SLMB). Compared with pure α-MnO 2 , all SLMB-MnO 2 (α-MnO 2 prepared from SLMB) exhibit better catalytic activities of VOCs oxidation. Among them, SLMB-MnO 2 -2, with a molar ratio value of KMnO 4 to Mn2+ of 2, exhibits the best catalytic activity (T 90 = 224 °C and 297 °C for toluene and chlorobenzene oxidation, respectively). By comparison of their physicochemical properties, it can be found that SLMB-MnO 2 -2 possesses a larger specific surface and abundant mesopores, better redox ability at low temperature, much more generation of oxygen vacancies, and abundant adsorbed oxygen species. Moreover, the suitable dopant of copper and appropriate concentration of acid treatment play a synergistic role in enhancing the catalytic performance of VOCs oxidation on SLMB-MnO 2 -2. Furthermore, combined with in-situ DRIFTS and TD/GC–MS, the catalytic mechanism of toluene oxidation is explored on SLMB-MnO 2 -2. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13835866
Volume :
295
Database :
Academic Search Index
Journal :
Separation & Purification Technology
Publication Type :
Academic Journal
Accession number :
157217917
Full Text :
https://doi.org/10.1016/j.seppur.2022.121316