The oxidation state of nitrogen in N3H is:
1.
2. + 3
3. –1
4.

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When KMnO4 acts as an oxidizing agent and ultimately forms \(\left[\mathrm{MnO}_4\right]^{-2}, \mathrm{MnO}_2, \mathrm{Mn}_2 \mathrm{O}_3, \mathrm{Mn}^{+2}\)
then the number of electrons transferred in each case, respectively, are:
| 1. | 4, 3, 1, 5 | 2. | 1, 5, 3, 7 |
| 3. | 1, 3, 4, 5 | 4. | 3, 5, 7, 1 |

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What are the values of a, b, c, and d if the chemical reaction below is assumed to be balanced?
1. 5, 6, 3, 3
2. 5, 3, 6, 3
3. 3, 5, 3, 6
4. 5, 6, 5, 5

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In a balanced equation
, the values of x, y, z are:
| 1. | x = 3, y = 5, z = 2 |
| 2. | x = 4, y = 8, z = 5 |
| 3. | x = 8, y = 4, z = 4 |
| 4. | x = 5, y = 3, z = 4 |

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Oxidation numbers of P in , of S in and that of Cr in are respectively:
1. +5, +6 and +6
2. +3, +6 and +5
3. +5, +3 and +6
4. -3, +6 and +6

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In a redox change, the oxidant K2Cr2O7 is always reduced to:
1. Cr5+
2. Cr4+
3. Cr3+
4. Cr2+

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Which metal exhibits more than one oxidation states?
1. Na
2. Mg
3. Al
4. Fe

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The reaction during which nitrogen gets oxidised is:
1. N2
2. NO
3. NO2
4. N

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Which among the following is a redox reaction?
1. NaCl + KNO3 NaNO3 + KCl
2. CaC2O4 + 2HCl CaCl2 + H2C2O4
3. Mg(OH)2 + 2NH4Cl MgCl2 + 2NH4OH
4. Zn + 2AgCN 2Ag + Zn(CN)2

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Conversion of PbSO4 to PbS is:
1. Reduction of S
2. Oxidation of S
3. Dissociation
4. None of the above

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