KINETICS AND MECHANISM OF TRITHIONATE AND TETRATHIONATE OXIDATION AT LOW PH BY HYDROXYL RADICALS

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dc.contributor.author Druschel G.K.
dc.contributor.author Luther III G.W.
dc.contributor.author Banfield J.F.
dc.contributor.author Hamers R.J.
dc.date.accessioned 2022-01-17T03:31:13Z
dc.date.available 2022-01-17T03:31:13Z
dc.date.issued 2003
dc.identifier https://www.elibrary.ru/item.asp?id=13815226
dc.identifier.citation Aquatic Geochemistry, 2003, 9, 2, 145-164
dc.identifier.issn 1380-6165
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/34379
dc.description.abstract The oxidation kinetics of trithionate (S3O 62-) and tetrathionate (S4O 62-) with hydroxyl radicals (OH*) have been investigated in systems analogous to acid mine drainage (AMD) environments. The discovery of hydroxyl radical (OH*) formation on pyrite surfaces (Borda et al., 2003) suggests hydroxyl radicals may affect the oxidation kinetics of intermediate sulfur species such as tetrathionate. Cyclic voltammetry experiments in acidic solutions indicate that the reaction of S4O 62- with OH* goes through an unknown intermediate, tentatively assigned as S3O 4n-. An outer-sphere electron transfer mechanism for the reaction of S4O 62- with OH* to form S3O 4n- is proposed based on experimental results. Oxidation rates for trithionate and tetrathionate in the presence of Fenton's reagent (which forms hydroxyl radicals) are too fast to be directly measured using UV-Vis spectrophotometry, electrochemical, or stop-flow spectrophotometry methods. Competitive reaction kinetics within the context of the Haber—Weiss mechanism suggests that the rate constant for the oxidation of trithionate and tetrathionate with OH* is in excess of 108 M-1 sec-1.
dc.title KINETICS AND MECHANISM OF TRITHIONATE AND TETRATHIONATE OXIDATION AT LOW PH BY HYDROXYL RADICALS
dc.type Статья


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