Identify the disproportionation reaction...

Identify the disproportionation reaction.

`CH_4 + 2O_2 rarr CO_2 + 2H_2O`

`CH_4 +4Cl_2 rarr "CCl"_4 + 4HCl`

`2F_2 + 2OH^(-) rarr 2F^(-) +OF_(2) +H_2O`

`2NO_2 + 2OH^(-) rarr NO_(2)^(-) + NO_(3)^(-) +H_2O`

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The correct Answer is:

Reactions in which the same substance is oxidised as well as reduced are called disproportionation reactions. Writing the O.N. of each element above its symbol in the given reactions.
(a) `overset(-4)Coverset(+1)H_4+2overset(0)O_2 rarroverset(+4)Coverset(-2)O_2+2overset(+1)H_2overset(-2)O`
(b) `overset(-4)Coverset(-1)H_4+4Coverset(0)l_2 rarroverset(+4-1)"CCl"_4+4overset(+1)Hoverset(-1)(Cl)`
(c) `2overset(0)F_2+2overset(-2)Ooverset(+1)Hrarr2overset(-1)F^(-)+overset(+2)Ooverset(-1)(F_(2)^(-))+overset(+1)H_(2)overset(-2)O`
(d) `2overset(+4)Noverset(-2)O_(2)+2overset(-2)Ooverset(+1)(H^(-) ) rarroverset(+3)Noverset(-2)(O_(2)^(-))+overset(+5)Noverset(-2)(O_(3)^(-))+overset(+1)(H_(2))overset(-2)O`
Thus, in reaction (d), N is both oxidised as well as reduced since the O.N. of N increases from +4 in `NO_2` to +5 in `NO_(3)^(-)` and decreases from +4 in `NO_2` to +3 in `NO_(2)^(-)`

Identify the disproportionation reaction.

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