When sulphur dioxide is passed in an acidified K2Cr2O7 solution, the oxidation state of sulphur is changed from

Question

When sulphur dioxide is passed in an acidified K2Cr2O7 solution, the oxidation state of sulphur is changed from (A) + 4 to 0 (B) + 4 to + 2 (C) + 4 to + 6 (D) + 6 to + 4

Tardigrade Admin · Accepted Answer

Acidified K22Cr2O7 solution oxidises SO2 into Cr2(SO4)3. overset text+4 3SO2 + K2Cr2O7 + + H2SO4 longrightarrow K2SO4 +Cr2 overset+6(SO4)3 + H2O Hence, oxidation state of sulphur changes from + 4 to + 6.

Q. When sulphur dioxide is passed in an acidified $K_{2} C r_{2} O_{7}$ solution, the oxidation state of sulphur is changed from

$+ 4$ to $0$

$+ 4$ to $+ 2$

$+ 4$ to $+ 6$

$+ 6$ to $+ 4$

Acidified $K_{22} C r_{2} O_{7}$ solution oxidises $S O_{2}$ into $C r_{2} (S O_{4})_{3}$ .

$3 SO 2 + +4 K_{2} C r_{2} O_{7} + + H_{2} S O_{4} ⟶ K_{2} S O_{4} + C r_{2} (S + 6 O_{4})_{3} + H_{2} O$

Hence, oxidation state of sulphur changes from $+ 4$ to $+ 6.$

Q. When sulphur dioxide is passed in an acidified K2​Cr2​O7​ solution, the oxidation state of sulphur is changed from

+4 to 0

+4 to +2

+4 to +6

+6 to +4