The oxidation states of the central atom in the given species are, respectively:
1. | 0 and +6 | 2. | +3 and +4 |
3. | +4 and +2 | 4. | +5 and +6 |
KI3, H2S4O6
The oxidation numbers of iodine and sulphur in the above compounds are, respectively:
1. \(\frac{1}{3}\) ; 4
2. 2.5 ; \(\frac{1}{3}\)
3. \(-\frac{1}{3}\) ; 2.5
4. 2.5 ; 3
The oxidation state of P in is-
1. | +3 | 2. | +4 |
3. | +2 | 4. | +5 |
undergoes disproportionation reaction in acidic medium but does not. It is:
1. | Due to the highest oxidation state of Mn in MnO42- |
2. | Due to the highest oxidation state of Mn in MnO4- |
3. | Due to the endothermic nature of the disproportionation reaction. |
4. | Due to the exothermic nature of the disproportionation reaction. |
The reaction that does not represent auto redox or disproportionation is:
1.
2.
3.
4.
Assertion: In the presentation and , and are redox couples.
Reason: A redox couple is the combination of the oxidised and reduced forms of a substance involved in an oxidation or reduction half cell.
1. | Both the assertion and the reason are true and the reason is the correct explanation of the assertion. |
2. | Both the assertion and the reason are true, but the reason is not the correct explanation of the assertion. |
3. | The assertion is true but the reason is false. |
4. | The assertion is false but the reason is true. |
The oxidation number of sulphur and nitrogen in H2SO5 and NO3- are respectively-
1. | +6, +5 | 2. | -6, -6 |
3. | +8, +6 | 4. | -8, -6 |
Which of the following reactions does not represent a redox change?
1. CaCO3 CaO + CO2
2. 2H2 + O2 2H2O
3. Na + H2O NaOH + \(\frac{1}{2}\)H2
4. MnCl3 MnCl2 + \(\frac{1}{2}\)Cl2
Fluorine reacts with ice as per the following reaction
H2O(s) + F2(g) → HF(g) + HOF(g)
This reaction is a redox reaction because-
1. | F2 is getting oxidized. | 2. | F2 is getting reduced. |
3. | Both (1) and (2)
|
4. | None of the above. |
Which element exhibits both positive and negative oxidation states?
1. | Cs | 2. | Ne |
3. | I | 4. | F |