a Choose the balanced equation for the following half-reaction, which takes place in acidic solution НВFO,(ag)...
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...
Balance the following net ionic equation by the half-reaction method. The reaction takes place in acidic solution. Br- (aq) + BrO3 - (aq) + Br2 (1) Express your answer as a chemical equation including phases. FAQ * R o B ? Submit Request Answer
(2) (4 pts) Gaseous nitrogen dioxide disproportionates spontaneously into nitric acid and nitrous acid in acidic aqueous solution. Show this by writing the balanced chemical reaction and evaluating the standard emf (in V) for the reaction. Useful Information Ed(V) Half-reaction red 2 H'(aq) 2 e > H2(g) 0.00 > NO2(g) H2O(I) +0.79 NO3 (аq) + 2 H" (аq) + е - NO: (aq) + 4 H (ад) + 3 е —> NO(g) + 2 H-0() +0.96 AuCla (aq) + 3...
balance the following half-reactions (all of which take place in acidic solution) a. HClO(aq) ---> CL^-(AQ) b. NO(AQ)--->N2O(G) c. N2O(AQ)--->N2(G) d. CLO3^-(AQ--->HCLO2(AQ) e. O2(G)--->H2O(L) f. SO4^2^-(AQ)--->H2SO3(AQ) g. H2O2(AQ)--->H2O(L) h. NO2^-(AQ)--->NO3^-(AQ)
Question 1 3.03 pts Assuming the following reaction takes place in an acidic solution, write a balanced equation for the overall reaction. Fe2+ + CrO2-Fe3+ + Crº 8H+2Fe2+ + CrO422Fe+++4H20 OSH* +3Fe2+ + CrO 2 + 3Fe3++C++ 4H20 2Fe2+ CrO42- 2Fe3+ + Cr3+ + 4H20
The following is a redox reaction, which takes place in acidic solution: Fe (s) + HC1 (aq) = HFeCl4 (aq) + H2 (g) The oxidation half-reaction is: The reduction half-reaction is: The oxidizing agent is the reducing agent is: The total number of electrons transferred in the balanced redox reaction is Can you please explain how you get everything please! I have the answers i just don't understand how to get there
Assuming the following pair of half-reactions below takes place in an acidic solution, write a balanced equation for the overall reaction. Fe-Fe3+ + 3e Bry+2e2Br Fe+Br2+ Fe3+ + 2Br te Fe+Br2+ Fe3+ + 2Br 2Fe +3Br2+2Fe3+ + 6Br"
Part A Balance the following equation by the half-reaction method. The reaction takes place in basic solution. Fe(s) + H2O(1) + O2(g) → Fe(OH)3(s) Express your answer as a chemical equation including phases. = AQ R O 2 ? 4Fe(OH)2 (s) + 2H, O(1) + O2 (g)+4Fe(OH)3 () Submit Previous Answers Request Answer X Incorrect; Try Again; 2 attempts remaining
In addition to mass balance, oxidation-reduction reactions must be balanced such that the number of electrons lost in the oxidation equals the number of electrons gained in the reduction. This balancing can be done by two methods: the half-reaction method or the oxidation number method. The half-reaction method balances the electrons lost in the oxidation half-reaction with the electrons gained in the reduction half-reaction. In either method H2O(l), OH?(aq), and H+(aq) may be added to complete the mass balance. Which...
Which of the following is the correct balanced half equation for the oxidation reaction in the unbalanced equation below. NO2-(aq) + Cr3+(aq) → Cr2+(aq) + NO3-(aq)