KINETICS OF IRON(III) HYDROLYSIS AND PRECIPITATION IN AQUEOUS GLYCINE SOLUTIONS ASSESSED BY VOLTAMMETRY

被引:3
作者
Cuculic, Vlado [1 ]
Pizeta, Ivanka [1 ]
机构
[1] Rudjer Boskovic Inst, Div Marine & Environm Res, Zagreb 10000, Croatia
关键词
Iron(III); Kinetics; Hydrolysis; Precipitation; Rate constants; Glycine; Voltammetry; Electrochemistry; EQUATORIAL PACIFIC-OCEAN; STABILITY-CONSTANTS; PHYTOPLANKTON BLOOM; IRON FERTILIZATION; NATURAL-WATERS; COMPLEXES; SOLUBILITY; SEAWATER; GROWTH; LIGAND;
D O I
10.1135/cccc2009103
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The kinetics of iron(III) hydrolysis and precipitation in aqueous glycine solutions were studied by cathodic voltammetry with a mercury drop electrode. The kinetics was controlled by changing ionic strength (I), pH and glycine concentration. Voltammetric measurements clearly showed formation and dissociation of a soluble Fe(III)-glycine complex, formation of iron(III) hydroxide and its precipitation. The rate constants of iron(III) hydroxide precipitation were assessed. The precipitation is first-order with respect to dissolved inorganic iron(III). The calculated rate constants of iron(III) precipitation varied from 0.18 x 10(-5) s(-1) (at 0.2 M total glycine, pH 7.30, I = 0.6 mol dm(-3)) to 2.22 x 10(-3) s(-1) (at 0.1 M total glycine, pH 7.30, I = 0.2 mol dm(-3)). At 0.5 M total glycine and I = 0.6 mol dm(-3), the iron(III) precipitation was not observed.
引用
收藏
页码:1531 / 1542
页数:12
相关论文
共 32 条
[2]  
BIRUS M, 1993, PROG REACT KINET, V18, P171
[3]   PHASE-TRANSFORMATIONS OF IRON-OXIDES, OXOHYDROXIDES, AND HYDROUS OXIDES IN AQUEOUS-MEDIA [J].
BLESA, MA ;
MATIJEVIC, E .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 1989, 29 (3-4) :173-221
[4]  
Bond A.M., 1980, MODERN POLAROGRAPHIC
[5]   A mesoscale phytoplankton bloom in the polar Southern Ocean stimulated by iron fertilization [J].
Boyd, PW ;
Watson, AJ ;
Law, CS ;
Abraham, ER ;
Trull, T ;
Murdoch, R ;
Bakker, DCE ;
Bowie, AR ;
Buesseler, KO ;
Chang, H ;
Charette, M ;
Croot, P ;
Downing, K ;
Frew, R ;
Gall, M ;
Hadfield, M ;
Hall, J ;
Harvey, M ;
Jameson, G ;
LaRoche, J ;
Liddicoat, M ;
Ling, R ;
Maldonado, MT ;
McKay, RM ;
Nodder, S ;
Pickmere, S ;
Pridmore, R ;
Rintoul, S ;
Safi, K ;
Sutton, P ;
Strzepek, R ;
Tanneberger, K ;
Turner, S ;
Waite, A ;
Zeldis, J .
NATURE, 2000, 407 (6805) :695-702
[6]   The dependence of FeIII hydrolysis on ionic strength in NaCl solutions [J].
Byrne, RH ;
Yao, WS ;
Luo, YR ;
Wang, B .
MARINE CHEMISTRY, 2005, 97 (1-2) :34-48
[7]   Iron hydrolysis and solubility revisited: observations and comments on iron hydrolysis characterizations [J].
Byrne, RH ;
Luo, YR ;
Young, RW .
MARINE CHEMISTRY, 2000, 70 (1-3) :23-35
[8]   A massive phytoplankton bloom induced by an ecosystem-scale iron fertilization experiment in the equatorial Pacific Ocean [J].
Coale, KH ;
Johnson, KS ;
Fitzwater, SE ;
Gordon, RM ;
Tanner, S ;
Chavez, FP ;
Ferioli, L ;
Sakamoto, C ;
Rogers, P ;
Millero, F ;
Steinberg, P ;
Nightingale, P ;
Cooper, D ;
Cochlan, WP ;
Landry, MR ;
Constantinou, J ;
Rollwagen, G ;
Trasvina, A ;
Kudela, R .
NATURE, 1996, 383 (6600) :495-501
[9]  
Crumbliss A.L., 1988, COMMENTS INORG CHEM, V8, P1
[10]  
Cuculic V, 2006, CROAT CHEM ACTA, V79, P41