The oxidation of carbonate green rust into ferric phases:: solid-state reaction or transformation via solution

被引:106
作者
Legrand, L
Mazerolles, L
Chaussé, A
机构
[1] Univ Evry, CNRS, CEA, Lab Anal & Environm,UMR 8587, F-91025 Evry, France
[2] CNRS, Ctr Etud Chim Met, F-94407 Vitry Sur Seine, France
关键词
D O I
10.1016/j.gca.2004.02.019
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The oxidation of carbonate green rust, GR(Co-3(2-)), in NaHCO3 solutions at T = 25degreesC has been investigated through electrochemical techniques, FTIR, XRD, TEM and SEM. The used GR(CO32-) samples were made of either suspended solid in solution or a thin electrochemically formed layer on the surface of an iron disc. Depending on experimental conditions, oxidation occurs, with or without major modifications of the GR(CO32-) structure, suggesting the existence of two pathways: solid-state oxidation (SSO) leading to a ferric oxyhydroxycarbonate as the end product, and a dissolution-oxidation-precipitation (DOP) mechanism leading to ferric oxillydroxides such as lepidocrocite, goethite, or ferrihydrite. A formula was proposed for this ferric oxyhydroxycarbonate, (Fe6O(2+x))-O-III(OH)((12-2x))(H2O)(x)(CO3), assuming that the solid-state oxidation reaction is associated to a deprotonation of the water molecules within the interlayers, or of the hydroxyl groups in the Fe(O,H) octahedra layers. The DOP mechanism involves transformation via solution with the occurrence of soluble ferrous-ferric intermediate species. A discussion about factors influencing the oxidation of carbonate green rust is provided hereafter. The ferric oxyhydroxycarbonate can be reduced back to GR(CO32-) by a reverse solid-state reduction reaction. The potentiality for a solid-state redox cycling of iron to occur may be considered. The stability of the ferric oxyhydroxycarbonate towards thermodynamically stable ferric phases, such as goethite and hematite, was also studied. Copyright 0 2004 Elsevier Ltd
引用
收藏
页码:3497 / 3507
页数:11
相关论文
共 48 条
[31]   FORMATION OF FE(II)1-FE(III)1 INTERMEDIATE GREEN COMPLEX ON OXIDATION OF FERROUS ION IN NEUTRAL AND SLIGHTLY ALKALINE SULFATE SOLUTIONS [J].
MISAWA, T ;
HASHIMOT.K ;
SHIMODAI.S .
JOURNAL OF INORGANIC & NUCLEAR CHEMISTRY, 1973, 35 (12) :4167-4174
[32]   MECHANISM OF FORMATION OF IRON-OXIDE AND OXYHYDROXIDES IN AQUEOUS-SOLUTIONS AT ROOM-TEMPERATURE [J].
MISAWA, T ;
HASHIMOTO, K ;
SHIMODAIRA, S .
CORROSION SCIENCE, 1974, 14 (02) :131-149
[33]   THE MECHANISM OF OXIDATION OF FERROUS HYDROXIDE IN SULFATED AQUEOUS-MEDIA - IMPORTANCE OF THE INITIAL RATIO OF THE REACTANTS [J].
OLOWE, AA ;
GENIN, JMR .
CORROSION SCIENCE, 1991, 32 (09) :965-984
[34]   Iron(II,III) hydroxycarbonate green rust formation and stabilization from lepidocrocite bioreduction [J].
Ona-Nguema, G ;
Abdelmoula, M ;
Jorand, F ;
Benali, O ;
Géhin, A ;
Block, JC ;
Génin, JMR .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2002, 36 (01) :16-20
[35]   Electrochemical deposition of thin films of green rusts 1 and 2 on inert gold substrate [J].
Peulon, S ;
Legrand, L ;
Antony, H ;
Chaussé, A .
ELECTROCHEMISTRY COMMUNICATIONS, 2003, 5 (03) :208-213
[36]  
PONNAMPERUMA FN, 1972, ADV AGRON, V24, P173
[37]   THE OXIDATION OF FERROUS HYDROXIDE IN CHLORIDE-CONTAINING AQUEOUS-MEDIA AND POURBAIX DIAGRAMS OF GREEN RUST ONE [J].
REFAIT, P ;
GENIN, JMR .
CORROSION SCIENCE, 1993, 34 (05) :797-819
[38]   Reduction of SeO42- anions and anoxic formation of iron(II)-iron(III) hydroxy selenate green rust [J].
Refait, P ;
Simon, L ;
Génin, JMR .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2000, 34 (05) :819-825
[39]   Experimental investigations on iron corrosion products formed in bicarbonate/carbonate containing solutions at 90°C [J].
Savoye, S ;
Legrand, L ;
Sagon, G ;
Lecomte, S ;
Chausse, A ;
Messina, R ;
Toulhoat, P .
CORROSION SCIENCE, 2001, 43 (11) :2049-2064
[40]   THE FORMATION OF GREEN RUST AND ITS TRANSFORMATION TO LEPIDOCROCITE [J].
SCHWERTMANN, U ;
FECHTER, H .
CLAY MINERALS, 1994, 29 (01) :87-92