TY - JOUR
T1 - Catalytic activity of porous manganese oxides for benzene oxidation improved via citric acid solution combustion synthesis
AU - Guo, Hao
AU - Zhang, Zhixiang
AU - Jiang, Zhi
AU - Chen, Mingxia
AU - Einaga, Hisahiro
AU - Shangguan, Wenfeng
N1 - Funding Information:
This work was financially supported by the National Key Research and Development Plan (No. 2017YFC0211804). The authors would also thank Mrs. Xinqiu Guo, Dr. Chong Lu, and Mrs. Guihua Han at Instrumental Analysis Center of Shanghai Jiao Tong University for their characterization works.
Publisher Copyright:
© 2020
PY - 2020/12
Y1 - 2020/12
N2 - Various manganese oxides (MnOx) prepared via citric acid solution combustion synthesis were applied for catalytic oxidation of benzene. The results showed the ratios of citric acid/manganese nitrate in synthesizing process positively affected the physicochemical properties of MnOx, e.g., BET (Brunauer-Emmett-Teller) surface area, porous structure, reducibility and so on, which were in close relationship with their catalytic performance. Of all the catalysts, the sample prepared at a citric acid/manganese nitrate ratio of 2:1 (C2M1) displayed the best catalytic activity with T90 (the temperature when 90% of benzene was catalytically oxidized) of 212℃. Further investigation showed that C2M1 was Mn2O3 with abundant nano-pores, the largest surface area and the proper ratio of surface Mn4+/Mn3+, resulting in preferable low-temperature reducibility and abundant surface active adsorbed oxygen species. The analysis results of the in-situ Fourier transform infrared spectroscopy (in-situ FTIR) revealed that the benzene was successively oxidized to phenolate, o-benzoquinone, small molecules (such as maleates, acetates, and vinyl), and finally transformed to CO2 and H2O.
AB - Various manganese oxides (MnOx) prepared via citric acid solution combustion synthesis were applied for catalytic oxidation of benzene. The results showed the ratios of citric acid/manganese nitrate in synthesizing process positively affected the physicochemical properties of MnOx, e.g., BET (Brunauer-Emmett-Teller) surface area, porous structure, reducibility and so on, which were in close relationship with their catalytic performance. Of all the catalysts, the sample prepared at a citric acid/manganese nitrate ratio of 2:1 (C2M1) displayed the best catalytic activity with T90 (the temperature when 90% of benzene was catalytically oxidized) of 212℃. Further investigation showed that C2M1 was Mn2O3 with abundant nano-pores, the largest surface area and the proper ratio of surface Mn4+/Mn3+, resulting in preferable low-temperature reducibility and abundant surface active adsorbed oxygen species. The analysis results of the in-situ Fourier transform infrared spectroscopy (in-situ FTIR) revealed that the benzene was successively oxidized to phenolate, o-benzoquinone, small molecules (such as maleates, acetates, and vinyl), and finally transformed to CO2 and H2O.
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U2 - 10.1016/j.jes.2020.06.008
DO - 10.1016/j.jes.2020.06.008
M3 - Article
C2 - 33097152
AN - SCOPUS:85086636694
SN - 1001-0742
VL - 98
SP - 196
EP - 204
JO - Journal of Environmental Sciences (China)
JF - Journal of Environmental Sciences (China)
ER -