(As soon as possible) Balance each of the following equations according to the half-reaction method: H2O2(aq) + MnO4−(aq)⟶Mn2+(aq) + O2(g) (in acid)
5H2O2(aq) + MnO4−(aq) + 6H3O+(aq) ⟶ Mn2+(aq) + 5O2(g) + 14H2O(l) | |
5H2O2(aq) + 2MnO4−(aq) + 6H3O+(aq) ⟶ 2Mn2+(aq) + 5O2(g) + 14H2O(l) | |
5H2O2(aq) + 2MnO4−(aq) + 7H3O+(aq) ⟶ Mn2+(aq) + 5O2(g) + 15H2O(l) |
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(As soon as possible) Balance each of the following equations according to the half-reaction method: H2O2(aq)...
The redox reaction between hydrogen peroxide, H2O2, and permanganate ions, MnO4-, in acid solution are as follows: 5H2O2(aq) + 2MnO4-(aq) + 6H+(aq) → 5O2(g) + 2Mn2+(aq) + 8H2O (l) 5 mol of MnO4-was required to reach the equilibrium. How many moles of H2O2were required to reach the equilibrium? a) 2 mol b. 10 mol c) 12.5 mol d) 25 mol
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5. (2 pts) Balance each of the following equations according to the half-reaction method: (a) NO3-(aq)- HNO2(aq) (in acidic solution) (b) MnO2(s)MnO4-(aq) (in basic solution) 6. (2 pts) A pint of premium ice cream can contain 1100 Calories. What mass of fat. in grams and pounds, must be produced in the body to store an extra 1.1 x 10 Calories if the average number of Calories for fat is 9.1 Calories/g? 7. (2 pts) The following sequence of reactions occurs...
Balance the following redox reaction: H2O2(aq) + MnO4-(aq) ↔ O2(g) + Mn2+(aq)
Balance each of the following equations according to the half-reaction method: 1) CN- (aq) + ClO2( aq) —> CNO- (aq) + Cl- (aq) (in acid) 2) MnO4- (aq) +NO2- (aq) → MnO2( s) + NO3 - (aq) (in base) 3) In which species does nitrogen have the highest oxidation number? a) NaNO3 b) HNO2 c) NO2- d) NH3 e) N2
a Choose the balanced equation for the following half-reaction, which takes place in acidic solution MnO4 (aq)Se2 (aq) -> Mn2(aq) Se(s) O 16H (aq)2Mn04- (aq)5Se2 (aq) ->2Mn2 (aq) 6H20()5Se(s) O16H (aq)2MnO4- (aq)5Se2 (aq) -2Mn2 (aq) 8H20(1) 5Se(s) 16H+ (aq)MnO4 (aq) 5Se2(aq) - Mn2(aq) +8H20(l) 5Se(s) O16H (aq)MnO4- (aq) 5Se2 (aq) -2Mn2(aq) + 8H2O(l)5Se(s) bChoose the balanced equation for the following half-reaction, which takes place in acidic solution: S2Os2(aq)CI (aq) SO42(aq) Cl2 (aq) S2O82(aq)2CI (aq) 2SO42(aq) Cl2(aq) S2O82-(aq)C (aq) -2SO42-(aq) 2Cl2...
Use the half-reaction method to balance each redox reaction occurring in acidic aqueous solution. Cl−(aq)+MnO4−(aq)→Cl2(g)+Mn2+(aq) Express your answer as a chemical equation. Identify all of the phases in your answer.
2. Balance the following redox equations by the ion-electron half-reaction method: (a) (acid solution): MnO (s) + PbO2 (s) → MnO,- + Pb2+ (b) (acid solution): MnO4 + Mn2+ → MnO2 (s) (c) (basic solution): Al (8) + OH → Al(OH) - + H2(g)
3. Balance the following redox equations by the ion-electron half-reaction method: (a) (acid solution): Cr0(aq) + U" (aq) → Cr" (aq) +UO; (aq) (b) (acid solution): Cr(s) + O2(g) → Cr* (aq) (C) (basic solution): P. (s) + OH' (aq) → PH; (g) + H2PO2 (aq)
Balance the following equations. (Use the lowest possible whole-number coefficients. These may be zero.) (a) Cr202-(aq) + NO2 (aq) = Cr3+ (aq) + NO3"(aq) Cr20,2- + NO3 + H+ + H2O= Cr3+ + NO3 + H+ + H20 (b) Mn04 (aq) + CH3OH(aq) Æ Mn2+ (aq) + HCO2H(aq) MnO4 + CH3OH + H+ + H2O= Mn2+ + HCO2H + H+ + H2O (c) ClO2(aq) + H2O2(aq) = C102 (aq) + O2(9) C102 + H2O2 + OH + H20 = ClO2...