Investigation of tungstate thiolation reaction kinetics and sedimentary molybdenum/tungsten enrichments: Implication for tungsten speciation in sulfidic waters and possible applications for paleoredox studies. (15th October 2020)
- Record Type:
- Journal Article
- Title:
- Investigation of tungstate thiolation reaction kinetics and sedimentary molybdenum/tungsten enrichments: Implication for tungsten speciation in sulfidic waters and possible applications for paleoredox studies. (15th October 2020)
- Main Title:
- Investigation of tungstate thiolation reaction kinetics and sedimentary molybdenum/tungsten enrichments: Implication for tungsten speciation in sulfidic waters and possible applications for paleoredox studies
- Authors:
- Cui, Minming
Mohajerin, T. Jade
Adebayo, Segun
Datta, Saugata
Johannesson, Karen H. - Abstract:
- Abstract: The kinetics of tungstate (i.e., WO4 2− ) thiolation were investigated in experimental solutions buffered at different pH values and as a function of varying dissolved sulfide concentrations. Similar to molybdate (MoO4 2− ), tungstate undergoes stepwise thiolation to tetrathiotungstate according to: W O x S 4 - x 2 - + H 2 S ( a q ) ↔ W O x - 1 S 5 - x 2 - + H 2 S ; 1 ≤ x ≤ 4. Under equilibrium conditions at standard conditions (298.15 K, 10 5 Pa) WO4 2− also converts to tetrathiotungate (WS4 2− ) around 1.0 mM H2 S (aq), reminiscent of the chemical switch for the MoO4 2− → MoS4 2− transition reported in the literature, but at nearly 100-fold higher H2 S (aq) concentrations. The laboratory experiments show that thiotungstate formation is first order with respect to H2 S concentration, and that the thiolation reactions are catalyzed by general Brønsted acids. Therefore, the high NH4 + and HCO3 − concentrations employed in the experiments both favored WO4 2− thiolation. The experimental data were used to develop Brønsted relationships for the successive thiolation reactions (i.e., WO3 S 2− → WO2 S2 2−, WO2 S2 2− → WOS3 2−, WOS3 2− → WS4 2− ) that allow the acid-catalyzed thiolation rates of WO4 2− to be estimated as a function of pH in natural waters. Reaction modeling of tungstate thiolation kinetics indicates that di- to trithiotungstate (WO2 S2 2− → WOS3 2− ) conversion and tri- to tetrathiomolybdate (MoOS3 2− → MoS4 2− ) conversion may not be achieved inAbstract: The kinetics of tungstate (i.e., WO4 2− ) thiolation were investigated in experimental solutions buffered at different pH values and as a function of varying dissolved sulfide concentrations. Similar to molybdate (MoO4 2− ), tungstate undergoes stepwise thiolation to tetrathiotungstate according to: W O x S 4 - x 2 - + H 2 S ( a q ) ↔ W O x - 1 S 5 - x 2 - + H 2 S ; 1 ≤ x ≤ 4. Under equilibrium conditions at standard conditions (298.15 K, 10 5 Pa) WO4 2− also converts to tetrathiotungate (WS4 2− ) around 1.0 mM H2 S (aq), reminiscent of the chemical switch for the MoO4 2− → MoS4 2− transition reported in the literature, but at nearly 100-fold higher H2 S (aq) concentrations. The laboratory experiments show that thiotungstate formation is first order with respect to H2 S concentration, and that the thiolation reactions are catalyzed by general Brønsted acids. Therefore, the high NH4 + and HCO3 − concentrations employed in the experiments both favored WO4 2− thiolation. The experimental data were used to develop Brønsted relationships for the successive thiolation reactions (i.e., WO3 S 2− → WO2 S2 2−, WO2 S2 2− → WOS3 2−, WOS3 2− → WS4 2− ) that allow the acid-catalyzed thiolation rates of WO4 2− to be estimated as a function of pH in natural waters. Reaction modeling of tungstate thiolation kinetics indicates that di- to trithiotungstate (WO2 S2 2− → WOS3 2− ) conversion and tri- to tetrathiomolybdate (MoOS3 2− → MoS4 2− ) conversion may not be achieved in temporally variable sulfidic waters. In such environments, intermediate thioanions of W and Mo dominate with Mo exhibiting a higher degree of thiolation than that of W. As the partition coefficient of W into minerals is affected by its speciation in solution, its enrichment in minerals may change due to the level and changes in dissolved sulfide concentrations. Specifically, the partition coefficient of W decreases from oxic environments to sulfidic environments, suggesting W enrichment in sediment is likely to be a good tracer of redox conditions (i.e., oxic and sulfidic conditions) in the overlying waters. In comparison, the partition coefficient of Mo increases from seasonally sulfidic environments to permanently sulfidic environments, indicating that Mo enrichment in sediments is a good tracer of sulfidic conditions. In addition, the Mo/W concentration ratio in black shales shows the potential for identifying fluctuation of redox conditions from ca. 2500 Ma to ca. 0.1 Ma and is a potential proxy for tracking deep time sulfidic conditions. Thus, even though the geochemical behavior of W is different from Mo, W can nevertheless be a potential proxy for tracking changing redox conditions in the modern and ancient ocean. … (more)
- Is Part Of:
- Geochimica et cosmochimica acta. Volume 287(2020)
- Journal:
- Geochimica et cosmochimica acta
- Issue:
- Volume 287(2020)
- Issue Display:
- Volume 287, Issue 2020 (2020)
- Year:
- 2020
- Volume:
- 287
- Issue:
- 2020
- Issue Sort Value:
- 2020-0287-2020-0000
- Page Start:
- 277
- Page End:
- 295
- Publication Date:
- 2020-10-15
- Subjects:
- Tungsten -- Speciation -- Kinetics -- Molybdenum/tungsten molar ratio -- Paleo-redox -- Proxy -- Euxinia
Geochemistry -- Periodicals
Meteorites -- Periodicals
Géochimie -- Périodiques
Météorites -- Périodiques
Geochemie
Astrochemie
Electronic journals
551.905 - Journal URLs:
- http://www.sciencedirect.com/science/journal/00167037 ↗
http://catalog.hathitrust.org/api/volumes/oclc/1570626.html ↗
http://books.google.com/books?id=8IjzAAAAMAAJ ↗
http://books.google.com/books?id=mInzAAAAMAAJ ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.gca.2020.04.004 ↗
- Languages:
- English
- ISSNs:
- 0016-7037
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4117.000000
British Library DSC - BLDSS-3PM
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- 14016.xml