H2C2O4 act as reducing agent because here Carbon is oxidised due to change the oxidation state from +III to +IV state
Carbon oxidation state in C2H2O4 is +III
Balance in acid solution: The reducing agent is The oxidation number of carbon in H2C2O4 is...
For each reaction below, identify the atom oxidized, the atom reduced, the oxidizing agent, the reducing agent, the oxidation half reaction, the reduction half reaction, and then balance the equation by the method of oxidation-reduction showing all electrons transfers. KMnO4 NaClH2SO4 à Cl2 K2SO4 MnSO4 H20 Na2SO4 5. Cr2O3 6. K2CR2O7 H20 + S à SO2 + KOH KCIO3 C12H22011 à KCI + H20 + CO2 7 H2C204+K2MnO4 à CO2 K20 Mn203 H20 8. 9. Mn(NO3) 2 NaBiO3 HNO3 à...
and the oxidizing agent and the oxidation and reduction process Identify the reducing agent in the equation. And balance the redox reaction in acidic medium (13 pts): MnOa)CNa) MnO26) +CNO (aq) 4.
5&6 5) Identify the oxidizing agent, reducing agent, substance oxidized, and substance reduced. a) Consider the reaction Fe(NO3)3(aq) + H2S(aq) → FeS(s) + HNO3(aq) + S(s). b) Consider the reaction CuO(s) + H2(g) → Cu(s) + H2O(l). 6) Consider the reaction C(g) + O2(g) + CO2(g). (a) Determine the oxidation states of carbon and oxygen in CO2. (Drawing a Lewis struc- tures may help here.) (b) What are the oxidation states of the reactants carbon and oxygen? (c) Which substance...
For each reaction below, identify the atom oxidized, the atom reduced, the oxidizing agent, the reducing agent, the oxidation half reaction, the reduction half reaction, and then balance the equation by the method of reactions. All are in acid.CIO₃- + C12H22O11 → Cl- + CO2
Balancing Oxidation–Reduction Reactions (Section)Complete and balance the following equations, and identify the oxidizing and reducing agents:(a) Cr2O72-(aq) + I-(aq)→Cr3+(aq) + IO3-(aq) (acidic solution)(b) MnO4-(aq) + CH3OH(aq) →Mn2+(aq) +HCO2H(aq) (acidic solution)(c) I2(s) + OCl-(aq)→IO3-(aq) + Cl-(aq) (acidic solution)(d) As2O3(s) + NO3-(aq)→H3AsO4(aq) + N2O3(aq) (acidic solution)(e) MnO4-(aq) + Br-(aq)→MnO2(s) + BrO3-(aq) (basic solution)(f) Pb(OH)42-(aq) + ClO-(aq)→PbO2(s) + Cl-(aq) (basic solution)
Which one of the following items does not characterize a reducing agent? a. A reducing agent loses electrons. b. A reducing agent causes another species to be reduced. c. The oxidation number of a reducing agent increases. d. A good reducing agent is a metal in a high oxidation state, such as Mn7+. e. An example of a good reducing agent is an alkali metal, such as Na.
Identify the oxidizing and reducing agent in the following. CrO42-+ C2O42-→ Cr3++ CO2
1. Balance one the following using the half reaction method. Identify oxidation, reduction, reducing agent, oxidizing agent. (5 pts) Au*(aq) + Fe() ► Fe2+ (aq) + Au(s)
For each reaction below, identify the atom oxidized, the atom reduced, the oxidizing agent, the reducing agent, the oxidation half reaction, the reduction half reaction, and Then balance the equation by the method of reactions. All are in acid 1. Mg +H" Mg + H2 2. MnO + Cl + Cl2 + Mn? 3. MnOr+NO; Mn? + NO; 4. CIO; + C12H2O1 Cl' + CO2
QUESTION 9 In the following redox reaction, what is the reducing agent? H20(1) + 3CH3OH(aq) + Cr2O72-(aq) — 3CH20(aq) + 2Cr3+(aq) + 8OH"(aq) O H₂O (1) CH3OH (aq) Cr2072- (aq) o cr2 O Cr3+(aq)