Understanding the Reduction Kinetics of Aqueous Vanadium(V) and Transformation Products Using Rotating Ring-Disk Electrodes

被引:70
作者
Chen, Gongde [1 ]
Liu, Haizhou [1 ]
机构
[1] Univ Calif Riverside, Dept Chem & Environm Engn, Riverside, CA 92521 USA
基金
美国国家科学基金会;
关键词
SPECIATION; CHEMISTRY; OXIDATION; REMOVAL; WATER; ACID; COMPLEXATION; GROUNDWATER; PHOSPHORUS; RELEVANCE;
D O I
10.1021/acs.est.7b02021
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Vanadium(V) is an emerging contaminant in the most recent Environmental Protection Agency's candidate contaminant list (CCL4). The redox chemistry of vanadium controls its occurrence in the aquatic environment, but the impact of vanadium(V) speciation on the redox properties remains largely unknown. This study utilized the rotating ring-disk electrode technique to examine the reduction kinetics of four pH- and concentration-dependent vanadiurn(V) species in the presence and the absence of phosphate. Results showed that the reduction of VO2+, HxV4O12+x(4+x)- (V-4), and HVO42- proceeded via a one-electron transfer, while that of NaxHyV10O28(6-x-Y)- (V-10) underwent a two-electron transfer. Koutecky-Levich and Tafel analyses showed that the intrinsic reduction rate constants followed the order of V-10 > VO2+ > V-4 > HVO42-. Ring-electrode collection efficiency indicated that the reduction product of V-10 was stable, while those of VO2+, HVO42-, and V-4 had short half-lives that ranged from milliseconds to seconds. With molar ratios of phosphate to vanadium(V) varying from 0 to 1, phosphate accelerated the reduction kinetics of V-10 and V-4 and enhanced the stability of the reduction products of VO2+, V-4, and HVO42-. This study suggests that phosphate complexation could enhance the reductive removal of vanadium(V) and inhibit the reoxidation of its reduction product in water treatment.
引用
收藏
页码:11643 / 11651
页数:9
相关论文
共 48 条
[11]   INTERACTION OF TRACE LEVELS OF VANADIUM(IV) AND VANADIUM(V) IN BIOLOGICAL-SYSTEMS [J].
CRANS, DC ;
BUNCH, RL ;
THEISEN, LA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1989, 111 (19) :7597-7607
[12]   The chemistry and biochemistry of vanadium and the biological activities exerted by vanadium compounds [J].
Crans, DC ;
Smee, JJ ;
Gaidamauskas, E ;
Yang, LQ .
CHEMICAL REVIEWS, 2004, 104 (02) :849-902
[13]   Study of the mechanism of the vanadium 4+/5+redox reaction in acidic solutions [J].
Gattrell, M ;
Park, J ;
MacDougall, B ;
Apte, J ;
McCarthy, S ;
Wu, CW .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (01) :A123-A130
[14]   Identification and Distribution of Vanadinite (Pb5(V5+O4)3Cl in Lead Pipe Corrosion By-Products [J].
Gerke, Tammie L. ;
Scheckel, Kirk G. ;
Schock, Michael R. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (12) :4412-4418
[15]   VANADIUM(V) OXYANIONS - THE INTERACTION OF VANADATE WITH PYROPHOSPHATE, AND ARSENATE [J].
GRESSER, MJ ;
TRACEY, AS ;
PARKINSON, KM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1986, 108 (20) :6229-6234
[16]   Vanadium interactions with chitosan:: Influence of polymer protonation and metal speciation [J].
Guzmán, J ;
Saucedo, I ;
Navarro, R ;
Revilla, J ;
Guibal, E .
LANGMUIR, 2002, 18 (05) :1567-1573
[17]  
Howd R., 2008, Proposed notification level for vanadium
[18]   Mechanistic Study of the Validity of Using Hydroxyl Radical Probes To Characterize Electrochemical Advanced Oxidation Processes [J].
Jing, Yin ;
Chaplin, Brian P. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2017, 51 (04) :2355-2365
[19]   A NOVEL PHENOMENON OF BURST OF OXYGEN-UPTAKE DURING DECAVANADATE-DEPENDENT OXIDATION OF NADH [J].
KALYANI, P ;
RAMASARMA, T .
MOLECULAR AND CELLULAR BIOCHEMISTRY, 1993, 121 (01) :21-29
[20]   POLYOXO ALKOXIDE CLUSTERS OF VANADIUM - STRUCTURAL CHARACTERIZATION OF THE DECAVANADATE CORE IN THE FULLY REDUCED VANADIUM(IV) SPECIES [V10O16((OCH2)3CCH2CH3)4]4- AND [V10O14(OH)2((OCH2)3CCH2OH)4]2- AND IN THE MIXED-VALENCE CLUSTERS [VIV8VV2O16((OCH2)3CR)4]2- (R = -CH2CH3, -CH3) [J].
KHAN, MI ;
CHEN, Q ;
GOSHORN, DP ;
ZUBIETA, J .
INORGANIC CHEMISTRY, 1993, 32 (05) :672-680