Promoting Diesel Soot Combustion Efficiency over Hierarchical Brushlike α-MnO2 and Co3O4 Nanoarrays by Improving Reaction Sites

Geng Liu, Jiahuan Yu, Li Chen, Nengjie Feng, Jie Meng, Fan Fang, Peng Zhao, Lei Wang, Hui Wan, Guofeng Guan

Research output: Contribution to journalArticlepeer-review

29 Scopus citations

Abstract

Improving the accessible reaction sites of catalysts is vital to diesel soot elimination. Herein, hierarchical brushlike α-MnO2 and Co3O4 nanoarrays were in situ grown on AISI304 stainless steel wire-mesh via a two-step hydrothermal method. Morphology investigation displayed that compared with sole α-MnO2 or Co3O4 nanoarrays, α-MnO2 and Co3O4 nanoarrays provided 8-fold reaction sites. XRD, Raman spectroscopy, XPS, H2-TPR, and soot-TPR techniques proved the synergistic effect between cobalt and manganese, namely, weaker Mn-O bonds, more surface active oxygen species, and better redox ability. Kinetic data also showed that the activation energy was decreased, and the pre-exponential factor was increased. α-MnO2 and Co3O4 nanoarrays displayed superior catalytic performance (T50 = 354 °C, T90 = 395 °C), durability, and isothermal regeneration activity. In a simulated diesel exhaust at 400 °C, 90% of soot would be eliminated at 12 min, and the regeneration would be finished within 30 min. Finally, the catalyst coating was tightly anchored on the substrate without exfoliation or crazing.

Original languageEnglish
Pages (from-to)13935-13949
Number of pages15
JournalIndustrial and Engineering Chemistry Research
Volume58
Issue number31
DOIs
StatePublished - 7 Aug 2019

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