please do number 5 Redox equation thanks 2. NO, (aq) + Al(s) - NH) (aq) +...
5. What is the concentration of silver(I) ion in a saturated solution of silver(I) carbonate containing 0.0030 M Na2CO3? For Ag2CO3, Ksp = 8.6 x 10-12. A) 6.0 x 10-4 M B) 2.0 x 10-'M C) 8.0 x 10-'M D) 5.4 x 10-5M E) 8.0 x 10-4M 6. Balance the following oxidation-reduction occurring in acidic solution. MnO4 (aq) + Co2+(aq) →Mn²+ (aq) + Co3+ (aq) A) B) C) D) E) MnO4 (aq) + 8 H+ (aq) + Co2+(aq) Mn²+ (aq)...
How do I solve the following redox reactions? What are the balanced half-reactions? What is the final balanced equation? Problems 1. MnO4 (aq) + SO32- (aq) → MnO2 (s) + SO42- (aq) in basic solution 2. NO2" (aq) + Al(s) NH3(aq) + Al(OH)4 (aq) in basic solution 3. Mn2+ (aq) + NaBiO3 (s) → Bi* (aq) + MnO4 (aq) + Nat (aq) in acidic solution 4. As2O3 (s) + NO3- (aq) → H3ASO4 (aq) + N2O3 (aq) in acidic solution...
2. Balance the following oxidation-reduction reactions that occur in acidic solution using the half-reaction method a. Cu(s) + NO, (aa)Cu2 (aa) NOGg) h. Cr,0, (aa) C (a) Cr (a)C2(g) c. Pb(s) + PbO2(s) + H2S04(aq) PbSO,(s) d. Mn(a) NaBio,()Bi (aa) + Mn04 (aq)
Balance each redox reaction occurring in acidic aqueous solution. a. PbO2(s) + (aq) Pb2+(aq) + 12(s) b. SO32-(aq) + MnO4 (aq) — 3042-(aq) + Mn²+(aq) c. S2032-(aq) + Cl2(g) 8042-(aq) + Cl²(aq)
help please Balance the following redox reaction in acidic solution. NO(g)+Zn2+(aq) → NOZ (aq)+Zn(s) - NO(g) + Zn²+ (aq) → NO, (aq) + Zn(s)
Balance Redox Equations (Acidic Solutions) show steps please. 1. HgS (s) + NO3^- (aq) + Cl^- (aq) = HgCl4^2- (aq) + NO (g) + S (s) 2. Fe^2+ (aq) + MnO4^- (aq) = Fe^3+ (aq) + Mn^2+ (aq) 3. BiO3^- (aq) + Mn^2+ (aq) = MnO4^- (aq) + Bi^3 (aq) 4. NiO2 (s) + Ag (s) = Ni^2+ (aq) + Ag^+ (aq) 5. IO3^- (aq) + I^- (aq) =I2 (s) 6. Zn (s) + H2SO4 (aq) = Zn^2+ (aq) +...
Consider the unbalanced redox reaction: MnO−4(aq)+Zn(s)→Mn2+(aq)+Zn2+(aq) Balance the equation in acidic solution. Part B- Determine the volume of a 0.475 M KMnO4 solution required to completely react with 3.35 g of Zn.
Using the activity series, select all REDOX REACTIONS that should occur A) Mn(s) + Ni2+(aq) --> Ni(s) + Mn2 (aq) B) 2Ag(s)+ Fe2+(aq) --> Fe(s) + 2Ag (aq) C) Ni(s) + Mn2t(aq) --> Mn(s) + Ni2 (aq) D) Sn(s) + Fe2+(aq) --> Fe(s) + Sn2 (aq) E) Zn(s) + Cu2 (aq)-> Cu(s) + Zn2 (aq) F) Fe(s)+Sn2 (aq) --> Sn(s) + Fe2 (aq)
2. Balance the following redox equation in a acidic solution: MnO4 (aq) + As«O6(s) → AsO4 (aq) + Mn2+(aq)
Consider the unbalanced redox reaction occurring in acidic solution: MnO−4(aq)+Zn(s)→Mn2+(aq)+Zn2+(aq) Part A Balance the equation in acidic solution. Express your answer as a chemical equation. Identify all of the phases in your answer. Part B Determine the volume of a 0.200 M KMnO4 solution required to completely react with 2.40 g of Zn. Express your answer using three significant figures.