Dendritic BiVO4 decorated with MnOx co-catalyst as an efficient hierarchical catalyst for photocatalytic ozonation

Jin Yang, Xuelian Liu, Hongbin Cao, Yanchun Shi, Yongbing Xie, Jiadong Xiao

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Front. Chem. Sci. Eng. ›› 2019, Vol. 13 ›› Issue (1) : 185-191. DOI: 10.1007/s11705-018-1713-z
RESEARCH ARTICLE
RESEARCH ARTICLE

Dendritic BiVO4 decorated with MnOx co-catalyst as an efficient hierarchical catalyst for photocatalytic ozonation

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Abstract

An appropriate co-catalyst can significantly promote the photocatalytic efficacy, but this has been seldom studied in the visible-light photocatalysis combined with ozone, namely photocatalytic ozonation. In this work, a dendritic bismuth vanadium tetraoxide (BiVO4) material composited with highly dispersed MnOx nanoparticles was synthesized, and its catalytic activity is 86.6% higher than bare BiVO4 in a visible light and ozone combined process. Catalytic ozonation experiments, ultra-violet-visible (UV-Vis) diffuse reflectance spectra and photoluminescence spectra jointly indicate that MnOx plays a triple role in this process. MnOx strengthens the light adsorption and promotes the charge separation on the composite material, and it also shows good activity in catalytic ozonation. The key reactive species in this process is ·OH, and various pathways for its generation in this process is proposed. This work provides a new direction of catalyst preparation and pushes forward the application of photocatalytic ozonation in water treatment.

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Keywords

manganese oxide / bismuth vanadium tetraoxide / photocatalytic ozonation / hydroxyl radical / co-catalyst

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Jin Yang, Xuelian Liu, Hongbin Cao, Yanchun Shi, Yongbing Xie, Jiadong Xiao. Dendritic BiVO4 decorated with MnOx co-catalyst as an efficient hierarchical catalyst for photocatalytic ozonation. Front. Chem. Sci. Eng., 2019, 13(1): 185‒191 https://doi.org/10.1007/s11705-018-1713-z

References

[1]
Bora L V, Mewada R K. Visible/solar light active photocatalysts for organic effluent treatment: Fundamentals, mechanisms and parametric review. Renewable & Sustainable Energy Reviews, 2017, 76: 1393–1421
CrossRef Google scholar
[2]
Lewis N S, Nocera D G. Powering the planet: Chemical challenges in solar energy utilization. Proceedings of the National Academy of Sciences of the United States of America, 2006, 103(43): 15729–15735
CrossRef Google scholar
[3]
Himmel M E, Ding S Y, Johnson D K, Adney W S, Nimlos M R, Brady J W, Foust T D. Biomass recalcitrance: Engineering plants and enzymes for biofuels production. Science, 2007, 315(5813): 804–807
CrossRef Google scholar
[4]
Abbas N, Shao G N, Imran S M, Haider M S, Kim H T. Inexpensive synthesis of a high-performance Fe3O4-SiO2-TiO2 photocatalyst: Magnetic recovery and reuse. Frontiers of Chemical Science and Engineering, 2016, 10(3): 405–416
CrossRef Google scholar
[5]
Jin Z L, Zhang X J, Li Y X, Li S B, Lu G X. 5.1% Apparent quantum efficiency for stable hydrogen generation over eosin-sensitized CuO/TiO2 photocatalyst under visible light irradiation. Catalysis Communications, 2007, 8(8): 1267–1273
CrossRef Google scholar
[6]
Li X, Yu J, Jaroniec M. Hierarchical photocatalysts. Chemical Society Reviews, 2016, 45(9): 2603–2636
CrossRef Google scholar
[7]
Schultz D M, Yoon T P. Solar synthesis: Prospects in visible light photocatalysis. Science, 2014, 343(6174): 985–995
CrossRef Google scholar
[8]
Liu X, Wu X L, Li J, Liu L Y, Ma Y Q. Simple synthesis of oxygen functional layered carbon nitride with near-infrared light photocatalytic activity. Catalysis Communications, 2017, 91: 21–24
CrossRef Google scholar
[9]
Sun X M, Wu J, Li Q F, Liu Q Z, Qi Y F, You L, Ji Z, He P, Sheng P F, Ren J X, Fabrication of BiOIO3 with induced oxygen vacancies for efficient separation of the electron-hole pairs. Applied Catalysis B: Environmental, 2017, 218: 80–90
CrossRef Google scholar
[10]
Mills A, LeHunte S. An overview of semiconductor photocatalysis. Journal of Photochemistry and Photobiology A Chemistry, 1997, 108(1): 1–35
CrossRef Google scholar
[11]
Zhang M W, Luo Z S, Zhou M, Zhang G G, Alamry K A, Taib L A, Asiri A M, Wang X C. Ni-Co layered double hydroxides cocatalyst for sustainable oxygen photosynthesis. Applied Catalysis B: Environmental, 2017, 210: 454–461
CrossRef Google scholar
[12]
Wang B, Guo X N, Jin G Q, Guo X Y. Visible-light-enhanced photocatalytic sonogashira reaction over silicon carbide supported Pd nanoparticles. Catalysis Communications, 2017, 98: 81–84
CrossRef Google scholar
[13]
Yang J H, Wang D G, Han H X, Li C. Roles of cocatalysts in photocatalysis and photoelectrocatalysis. Accounts of Chemical Research, 2013, 46(8): 1900–1909
CrossRef Google scholar
[14]
Yang J, Yan H, Wang X, Wen F, Wang Z, Fan D, Shi J, Li C. Roles of cocatalysts in Pt-PdS/CdS with exceptionally high quantum efficiency for photocatalytic hydrogen production. Journal of Catalysis, 2012, 290: 151–157
CrossRef Google scholar
[15]
Li R G, Zhang F X, Wang D G, Yang J X, Li M R, Zhu J, Zhou X, Han H X, Li C. Spatial separation of photogenerated electrons and holes among {010} and {110} crystal facets of BiVO4. Nature Communications, 2013, 4(2): 1432
[16]
Gordon T R, Cargnello M, Paik T, Mangolini F, Weber R T, Fornasiero P, Murray C B. Nonaqueous synthesis of TiO2 nanocrystals using TiF4 to engineer morphology, oxygen vacancy concentration, and photocatalytic activity. Journal of the American Chemical Society, 2012, 134(15): 6751–6761
CrossRef Google scholar
[17]
Agustina T E, Ang H M, Vareek V K. A review of synergistic effect of photocatalysis and ozonation on wastewater treatment. Journal of Photochemistry and Photobiology C, Photochemistry Reviews, 2005, 6(4): 264–273
CrossRef Google scholar
[18]
Xiao J D, Xie Y B, Cao H B. Organic pollutants removal in wastewater by heterogeneous photocatalytic ozonation. Chemosphere, 2015, 121: 1–17
CrossRef Google scholar
[19]
Xiao J D, Xie Y B, Cao H B, Wang Y Q, Zhao Z J. g-C3N4 triggered super synergy between photocatalysis and ozonation attributed to promoted (OH)-O-center dot generation. Catalysis Communications, 2015, 66: 10–14
CrossRef Google scholar
[20]
Xiao J D, Xie Y B, Nawaz F, Jin S, Duan F, Li M J, Cao H B. Super synergy between photocatalysis and ozonation using bulk g-C3N4 as catalyst: A potential sunlight/O3/g-C3N4 method for efficient water decontamination. Applied Catalysis B: Environmental, 2016, 181: 420–428
CrossRef Google scholar
[21]
Nawrocki J, Kasprzyk-Hordern B. The efficiency and mechanisms of catalytic ozonation. Applied Catalysis B: Environmental, 2010, 99(1-2): 27–42
CrossRef Google scholar
[22]
Rekha M, Kathyayini H, Nagaraju N. Catalytic activity of manganese oxide supported on alumina in the synthesis of quinoxalines. Frontiers of Chemical Science and Engineering, 2013, 7(4): 415–421
CrossRef Google scholar
[23]
Xiao J D, Xie Y B, Nawaz F, Wang Y, Du P H, Cao H B. Dramatic coupling of visible light with ozone on honeycomb-like porous g-C3N4 towards superior oxidation of water pollutants. Applied Catalysis B: Environmental, 2016, 183: 417–425
CrossRef Google scholar
[24]
Xiao J, Rabeah J, Yang J, Xie Y, Cao H, Brückner A. Fast electron transfer and ·OH formation: Key features for high activity in visible-light-driven ozonation with C3N4 catalysts. ACS Catalysis, 2017, 7(9): 6198–6206
CrossRef Google scholar
[25]
Afzal S, Quan X, Chen S, Wang J, Muhammad D. Synthesis of manganese incorporated hierarchical mesoporous silica nanosphere with fibrous morphology by facile one-pot approach for efficient catalytic ozonation. Journal of Hazardous Materials, 2016, 318: 308–318
CrossRef Google scholar
[26]
Yang S, Wang C, Li J, Yan N, Ma L, Chang H. Low temperature selective catalytic reduction of NO with NH3 over Mn-Fe spinel: Performance, mechanism and kinetic study. Applied Catalysis B: Environmental, 2011, 110: 71–80
CrossRef Google scholar
[27]
Yoshida M, Yomogida T, Mineo T, Nitta K, Kato K, Masuda T, Nitani H, Abe H, Takakusagi S, Uruga T, et al. Photoexcited hole transfer to a MnOx cocatalyst on a SrTiO3 photoelectrode during oxygen evolution studied by in situ X-ray absorption spectroscopy. Journal of Physical Chemistry C, 2014, 118(42): 24302–24309
CrossRef Google scholar
[28]
Kim H I, Kim H, Weon S, Moon G, Kim J H, Choi W. Robust Co-catalytic performance of nanodiamonds loaded on WO3 for the decomposition of volatile organic compounds under visible light. ACS Catalysis, 2016, 6(12): 8350–8360
CrossRef Google scholar
[29]
Nawaz F, Cao H B, Xie Y B, Xiao J B, Chen Y, Ghazi Z A. Selection of active phase of MnO2 for catalytic ozonation of 4-nitrophenol. Chemosphere, 2017, 168: 1457–1466
CrossRef Google scholar

Acknowledgements

This work was supported by Beijing Natural Science Foundation (8172043), the National Science Fund for Distinguished Young Scholars of China (51425405), and Chinese Academy of Sciences (ZDRW-ZS-2016-5).

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2018 Higher Education Press and Springer-Verlag GmbH Germany, part of Springer Nature
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