The kinetics and mechanism of the oxidation of inorganic oxysulfur compounds by potassium ferrate.
-
Add time:07/22/2019 Source:sciencedirect.com
The kinetics and mechanism of the oxidation of the sulfite (SO32−), thiosulfate (S2O32−) and dithionite (S2O42−) ions by ferrate (FeO42−) ions was studied under pseudo-first-order conditions and, in addition, the reaction with thiosulfate ions was studied under non-pseudo-first-order conditions. Previous work on sulfite and thiosulfate was repeated and extended, specifically over a larger pH range, and using non-pseudo-first-order kinetics. Dithionite was only studied at high pH values because of rapid hydrolysis below a pH of about 10. The kinetics for sulfite and thiosulfate showed a first-order dependence on hydrogen, oxysulfur and ferrate ion concentrations at high pH values, but became independent of the hydrogen ion concentration below a pH of about 8.5. The kinetics for dithionite involved two terms, one being first-order in the hydrogen, dithionite and ferrate ion concentrations, and the other being first-order in only the dithionite and ferrate ions. For all three reductants the proposed mechanism has a rate-determining step involving reaction between the protonated ferrate and the oxysulfur ions. For dithionite there is also a rate-determining step involving reaction between unprotonated ferrate and dithionite. All the oxysulfur ions gave Fe(III) as a product. Sulfite produced sulfate, whereas thiosulfate and dithionite gave sulfite.
We also recommend Trading Suppliers and Manufacturers of Potassium dithionite (cas 14293-73-3). Pls Click Website Link as below: cas 14293-73-3 suppliers
Prev:An interesting strategy devoted to fabrication of a novel and high-performance amperometric sodium dithionite sensor
Next:Using of ecofriendly α-hydroxycarbonyls as reducing agents to replace sodium dithionite in indigo dyeing processes) - 【Back】【Close 】【Print】【Add to favorite 】
- Related Information
- Kinetics and mechanism of the oxidation of sodium dithionite at a platinum electrode in alkaline solution07/27/2019
- Rapid Analysis of Plasma Paraquat Using Sodium Dithionite As a Predictor of Outcome in Acute Paraquat Poisoning07/26/2019
- Electrochemical behaviour of sodium dithionite and sulfite at a gold electrode in alkaline solution07/25/2019
- Anoxic decrease in potassium outward currents of hippocampal cultured neurons in absence and presence of dithionite07/24/2019
- Using of ecofriendly α-hydroxycarbonyls as reducing agents to replace sodium dithionite in indigo dyeing processes07/23/2019
- An interesting strategy devoted to fabrication of a novel and high-performance amperometric sodium dithionite sensor07/20/2019
- Arsenic removal using advanced reduction process with dithionite/UV—A kinetic study07/21/2019
- Kinetics and pathway of atrazine degradation by a novel method: Persulfate coupled with dithionite07/19/2019
- Long-term stability of dithionite in alkaline anaerobic aqueous solution07/18/2019
-
Health and Chemical more >
-
Related Products
- Potassium (2S,3S)-3-(ethoxycarbonyl)oxirane-2-carboxylate
- Potassium (4-formylphenyl)trifluoroborate
- Potassium (bromomethyl)trifluoroborate
- Potassium (R)-((3-ethoxy-1-methyl-3-oxoprop-1-enyl)amino)(4-hydroxyphenyl)acetate
- Potassium (R)-(4-hydroxyphenyl)((3-methoxy-1-methyl-3-oxoprop-1-enyl)amino)acetate
- Potassium (R)-[(3-ethoxy-1-methyl-3-oxoprop-1-enyl)amino]phenylacetate
- Potassium [(cyanomethyl)thio]acetate
- Potassium 1,2,3,6-tetrahydro-5-nitro-2,6-dioxopyrimidine-4-carboxylate
- Potassium 2,2-dimethyl-1,3-dioxolane-4-carboxylate
- Potassium 2,3,3-trimethyl-3H-indole-5-sulfonate


