[1]
|
PINKERNELL U, VON GUNTEN U. Bromate minimization during ozonation:Mechanistic considerations[J]. Environmental Science & Technology, 2001, 35(12):2525-2531.
|
[2]
|
YANG J X, LI J, DONG W Y, et al. Enhancement of bromate formation by pH depression during ozonation of bromide-containing water in the presence of hydroxylamine[J]. Water Research, 2017, 109:135-143.
|
[3]
|
NIE Y, HU C, LI N, et al. Inhibition of bromate formation by surface reduction in catalytic ozonation of organic pollutants over β-FeOOH/Al2O3[J]. Applied Catalysis B:Environmental, 2014, 147:287-292.
|
[4]
|
XIAO Q, YU S, LI L, et al. An overview of advanced reduction processes for bromate removal from drinking water:Reducing agents, activation methods, applications and mechanisms[J]. Journal of Hazardous Materials, 2017, 324:230-240.
|
[5]
|
VON GUNTEN U. Ozonation of drinking water:Part Ⅱ. Disinfection and by-product formation in presence of bromide, iodide or chlorine[J]. Water Research, 2003, 37:1469-1487.
|
[6]
|
SAGEHASHI M, SHIRAISHI K, FUJITA H, et al. Ozone decomposition of 2-methylisoborneol (MIB) in adsorption phase on high silica zeolites with preventing bromate formation[J]. Water Research, 2005, 39(13):2926-2934.
|
[7]
|
ZHANG T, HOU P, QIANG Z, et al. Reducing bromate formation with H+-form high silica zeolites during ozonation of bromide-containing water:Effectiveness and mechanisms[J]. Chemosphere, 2011, 82(4):608-612.
|
[8]
|
YANG H, YANG S, WU L, et al. CexZr1-xO2 mixed oxides applied to minimize the bromate formation in the catalytic ozonation of a filtered water[J]. Catalysis Communications, 2011, 15(1):99-102.
|
[9]
|
HARVEY A E, SMART J A, AMIS E S. Simultaneous spectrophotometric determination of Iron(Ⅱ) and total iron with 1,10-Phenanthroline[J]. Analytical Chemistry, 1955, 27(1):26-29.
|
[10]
|
XU B, XIAO T, YAN Z, et al. Synthesis of mesoporous alumina with highly thermal stability using glucose template in aqueous system[J]. Microporous and Mesoporous Materials, 2006, 91(1-3):293-295.
|
[11]
|
ZHAN W, LU G, GUO Y, et al. Synthesis of Ln-doped MCM-41 mesoporous materials and their catalytic performance in oxidation of styrene[J]. Journal of Rare Earths, 2008, 26(1):59-65.
|
[12]
|
JEON H, PARK J, JANG W, et al. Detection of oxygen ion drift in Pt/Al2O3/TiO2/Pt RRAM using interface-free single-layer graphene electrodes[J]. Carbon, 2014, 75:209-216.
|
[13]
|
LIU W J, ZENG F X, JIANG H, et al. Composite Fe2O3 and ZrO2/Al2O3 photocatalyst:Preparation, characterization, and studies on the photocatalytic activity and chemical stability[J]. Chemical Engineering Journal, 2012, 180:9-18.
|
[14]
|
LIOU Y, CHEN Y, CHEN B, et al. XPS study of aluminum coating on TiO2 anode of dye-sensitized solar cells[J]. Surface and Coatings Technology, 2013, 231:535-538.
|
[15]
|
BRAJPURIYA R, SHRIPATHI T. Investigation of Fe/Al interface as a function of annealing temperature using XPS[J]. Applied Surface Science, 2009, 255(12):6149-6154.
|
[16]
|
BING J S, HU C, ZHANG L L. Enhanced mineralization of pharmaceuticals by surface oxidation over mesoporous γ-Ti-Al2O3 suspension with ozone[J]. Applied Catalysis B:Environmental, 2017, 202, 118-126.
|