Count for the fallacy. (ii), we have, H2O(aq) + 2e– ——-> H2(g) + 2OH–((aq); E° = -0.83 V (a) CuO(s) + H2(g) —–> Cu(s) + H20(g) P4 acts both as an oxidising as well as a reducing agent. Answer: (a) Hg(II)Cl2, (b) Ni(II)SO4, (c)Sn(IV)O2 (d) T12(I)SO4, (e) Fe2(III)(S04)3, (f) Cr2(III)O3. Answer:  Lower the electrode potential, better is the reducing agent. Therefore, it quickly accepts an electron to form the more stable +1 oxidation state. Predict the products of electrolysis in each of the folloxving: Which of these will actually get discharged would depend upon their electrode potentials which are given below: H20(S) + F2 (g) ——-> HF(g) + HOF(g) Answer:  It is a U-shaped tube filled with agar-agar containing inert electrolyte like KCl or KNO3 which does not react with solutions. The aqueous solution is typically either acidic or basic, so hydrogen ions or hydroxide ions … MnO2 (s) + 4HF(l) ———–> No reaction. Starting with the correctly balanced half reactions write the overall net ionic reactions. Since HCl is a very weak reducing agent, it can not reduce H2S04 to S02 and hence HCl is not oxidised to Cl2. (a) F (b) Br (c) I (d) Cl (a) + 2 (b) +4 (c) +1 (d) +3 Considering the equation above, we have 2 hydrogen (H) with the total charge +1[Refer the charges of the elements in the above table] and 2 oxygen (O) with the total charge -2 on the L.H.S and 2 hydrogen (H) with total charge +2 and only 1 oxygen (O) with the total charge -2 on the R.H.S. Question 13. When the given electrode acts as anode SHE, we give -ve sign to its reduction potential and +ve sign to its oxidation potential. The Mn3+ ion is unstable in solution and undergoes disproportionation to give Mn2+, MnO2 and H+ ion. of C decreases from +3 in (CN)2 to +2 in CN–ion and increases from +3 in(CN)2 to +4 in CNO– ion. b. Cu + HNO3 Cu2+ + NO + H2O The reaction occurs in acidic solution. If we use a piece of platinum coated with finely divided black containing hydrogen gas absorbed in it. N2H4(g) + ClO4(aq) ———–> NO(g) + Cr(aq) Count for the fallacy. Answer: (i) In aqueous solution, AgNO3 ionises to give Ag+(aq) and NO3– (aq) ions. Here, O is removed from CuO, therefore, it is reduced to Cu while O is added to H2 to form H20, therefore, it is oxidised. Balance the following oxidation-reduction reaction, in acidic solution, by using oxidation number method. (ii) In H2O2, the O.N. 2 (+1) + x + 4 (-2) = 0 2 + x-8 = 0 8.18 Balance the following redox reactions by ion – electron method (b) (In Acidic medium) (d) 10. Question 15. Best wishes in your studies. Question 2. The balanced equation is "5Fe"^"2+" + "MnO"_4^"-" + "8H"^"+" → "5Fe"^"3+" + "Mn"^"2+" + "4H"_2"O". Alkali metals because of the presence of a single electron in the valence shell, exhibit an oxidation state of +1. Why? ∴ MnO₄  -------- MnO₂   [Change of 4 units]. Reducing power goes on increasing whereas oxidising power goes on dcreasing down the series. (c) I. Multiply Eq. The oxidation number of carbon is zero in Answer: In a galvanic cell due to redox reaction released energy gets converted into the electrical energy. Question 28. Answer: (a) Do it yourself. In the‘ethylene molecule the two carbon atoms have the oxidation numbers. Answer: Writing the O.N. (Use the lowest possible coefficients.) Popular Questions for the Redox Reactions, CBSE Class 11-science CHEMISTRY, Chemistry Part Ii. Therefore, we must consider its structure, K+[I —I <— I]–. Overall reaction: 2Fe3+ (aq) + 2I–(aq) ——-> 2Fe2+  (aq) + I2(s); E° = + 0.23 V While sulphur dioxide and hydrogen peroxide can act as an oxidising as well as reducing agents in their reactions, ozone and nitric acid act only as oxidants. Balance the following redox reactions using the half-reaction method. (c) Cl2O7(g) + H2O2(aq) ———-> ClO2–(aq) + O2(g) + H+ Question 14. Answer: Question 8. Write balanced chemical equation for the following reactions: (i) Permanganate ion (MnO 4 –) reacts with sulphur dioxide gas in acidic medium to produce Mn 2 + and hydrogensulphate ion. Question 19. Now balance the the oxygen atoms. asked Feb 14 in Chemistry by Nishu03 (64.1k points) redox reactions; class-11; 0 votes. d. Br2 BrO3- + Br- The reaction occurs in basic solution. Click hereto get an answer to your question ️ Balance the following equations by the ion electron method:a. MnO4^ + Cl^ + H^⊕ Mn^2 + + H2O + Cl2 b. Cr2O7^2 - + I^ + H^⊕ Cr^3 + + H2O + I2 c. H^⊕ + SO4^2 - + I^ H2S + H2O + I2 d. MnO4^ + Fe^2 + Mn^2 + + Fe^3 + + H2O Step 4 . (i), the sign of the electrode potential as given in Table 8.1 is reversed. The ion-electron method allows one to balance redox reactions regardless of their complexity. What is the oxidation state of Ni in Ni (CO)4? of S in H2SO5. Since the oxidation potential of Ag is much higher than that of H2O, therefore, In this reaction, you show the nitric acid in the ionic form, because it’s a strong acid. Answer: A species which loses electrons as a result of oxidation is a reducing agent. Thus, F2 is the best oxidant. The oxidation number of the carboxylic carbon atom in CH3COOH is whether one calculates by conventional method or by chemical bonding method. 2H2O(l) ————–> 02(g) +4H+(aq)+4e– ; E° = -1.23 V …(iv) (iii) KClO4 ; K(+l); Cl(+7); 0(-2), Question 6. First Write the Given Redox Reaction. ∴ General Steps ⇒ Step 1. Balance the following equation in basic medium by ion electron method and oxidation number method and identify the oxidising agent and the reducing agent. Here, each K atom as lost one electron to form K+ while F2 has gained two electrons to form two F– ions. 2MnO4–(aq) + 5S02(g) + 2H20(l) + H+(aq) ————> 2Mn2+(aq) + 5HSO4–(aq) To fix this issue, you must add a negative charge to the equation to balance the charges. or an oxidation state of +1 compounds of I with more electronegative elements, i.e., O, F, etc.) Thus, it is a redox reaction. Basic conditions are different, some of my recent answers show balancing of basic conditions if you want some examples.) (iii) Na is a reducing agent while 02 is an oxidising agent. MnO₄ + I⁻ ----- MnO₂ + I₂. The path of reactions (a) and (b) can be determined by using  H20218 or D20 in reaction \[\ce{ Ag(s) + Zn^{2+}(aq) \rightarrow Ag_2O(aq) + Zn(s)} \nonumber\] ... Redox reactions can be balanced by inspection or by the half reaction method. From the equation, MnO₄ ----- MnO₂ [Reduction] I⁻ -----I₂ [Oxidation] Step3. K+/K = -2.93 V, Ag+/Ag = 0.80 V, Hg2+/Hg = 0.79 V, Mg2+/Mg = -2.37 V, Further, H is added to BCl3 but is removed from LiAlH4, therefore, BC13 is reduced while LiAlH4 is oxidised. Justify that the following reactions are redox reactions: MnO4–(aq) + 8H+(aq) + 5e– ——–> Mn2+(aq) + 4H2O(l) ………..(ii) (iii) In aqueous solution, H2S04ionises to give H+(aq) and SO42-(aq) ions. (a) Arrange the following in order of increasing O.N of iodine: of S in S2O32- is +2 while in S4O62- it is + 2.5. (b) Chlorine is in maximum oxidation state +7 in ClO4 so it does not show the disproportionation reaction. of S by chemical bonding method. Answer: (a) In H2O2 oxidation number of O = -1 and can vary from 0 to -2 (+2 is possible in OF2). The structure of H2SO5 is (iii) In O3, the O.N. This fallacy is overcome if we calculate the O.N. Answer: (a) It may be noted that for oxidation reactions, i.e., Eq. Balance the following redox reactions by ion-electron method. Consider the elements: Cs, Ne, I, F The Previous answer is noy balanced !! Reduction half equation: (ii) It maintains the electrical neutrality. What is a standard hydrogen electrode? Ag(s) ———–> Ag+(aq) + e–; E° = -0.80 V …(iii) Cr2O72–(aq) + 14H+(aq) + 6e– ————> 2Cr3+(aq) + 7H20(l) …(ii) Answer:  O.N. Answer: (i) KMnO4 ; K(+l); Mn(+7), 0(-2) This probably boils right down to the comparable factor using fact the oxidation extensive form approach. Each half-reaction is balanced separately and then the equations are added together to give a balanced overall reaction. HAVE ANICE DAY AN If, however, excess of Cl2 is used, the initially formed PCl3 reacts further to form PCl5 in which the oxidation state of P is +5 which species is oxidised. No widgets added. Write the oxidation number of Cr above its symbol and that of H2O above its formula. When excess of Na is used, sodium oxide is formed in which the oxidation state of O is -2. What is the oxidation number of P in H3P04? Answer:  N2H4is reducing agent i.e., reductant whereas Cl03–is oxidising agent i.e., oxidant. Each half-reaction is balanced separately and then the equations are added together to give a balanced overall reaction. Solution for Balance the following redox reaction in basic solution. On the reaction (c) Oxidation half equation: Fe2+(aq) ———> Fe3+(aq) + e– …(i) Since the EMF for the above reaction is positive, therefore, the above reaction is feasible. (ii) K2Cr2O7 ; K(+l) ; Cr(+6) ; 0(-2) H2S04 is added to an inorganic mixture containing chloride, HCl is produced but if a mixture contains bromide, then we get red vapours of bromine. at the anode, it is the Ag of the silver anode which gets oxidised and not the H2O molecules. (i) and gained in Eq. 1. Oxidation half equation: They are just different ways of keeping track of the electrons transferred during the reaction. Example: 1 Balance the given redox reaction: H 2 + + O 2 2--> H 2 O. WARNING: This is a long answer. 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Anode or H2O molecules are oxidised + Zn - > MnO4^- + Fe^2+ → +!