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Question

For the reaction, I+ClO3+H2SO4Cl+HSO4+I2 the correct statement (s) in the balanced equation is/are.

A
stoichiometric coefficient of HSO4 is 6
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B
Iodide is oxidised
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C
Sulphur is reduced
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D
H2O is one of the products
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Solution

The correct option is D H2O is one of the products
1, 2, and 4
Plan
This problem includes concept of redox reaction. A redox reaction consists of oxidation half - cell reaction and reduction half - cell reaction. Write both half - cell reactions, i.e. oxidation half - cell reaction and reduction half - cell reaction. Then balance both the equations.
Now determine the correct value of stoichiometry of H_2 SO_4.
Oxidation half – reaction, 2II2+2e … (i)
Here, I is converted into I2. Oxidation number of I is increasing from -1 t 0 hence, this is a type of oxidation reaction.
Reduction half - reaction
6H++ClO3+6eCl+3H2O … (ii)
. Here, H2O releases as a product. Hence, option (4) is correct.
Multiplying equation (i) by 3 and adding in equation (ii)
6I+ClO3+6H+Cl+3I2+3H2O
6I+ClO3+6H2SO4Cl+3I2+3H2O+6HSO4
. Stoichiometric coefficient of HSO4 is 6.
Hence, option (1), (2) and (4) are correct.

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