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Question: In the ‘ring test’ of \(N{{O}_{3}}^{-}\)ion, there is formation of a brown colour ring. What is its ...

In the ‘ring test’ of NO3N{{O}_{3}}^{-}ion, there is formation of a brown colour ring. What is its formula?
[Fe(H2O)5NO3]2+{{[Fe{{({{H}_{2}}O)}_{5}}N{{O}_{3}}]}^{2+}}
[Fe(H2O)4NOSO4]2+{{[Fe{{({{H}_{2}}O)}_{4}}NOS{{O}_{4}}]}^{2+}}
[Fe(H2O)5NO]2+{{[Fe{{({{H}_{2}}O)}_{5}}NO]}^{2+}}
None of these

Explanation

Solution

Hint: NO3N{{O}_{3}}^{-}is the chemical formula of the nitrate ion.
The brown colour ring is formed in the identification test of nitrate ion in the ‘ring test’. Reagents used are a nitrating mixture (concentrated H2SO4{{H}_{2}}S{{O}_{4}}(sulphuric acid) + concentrated HNO3HN{{O}_{3}}) and FeSO4FeS{{O}_{4}}(ferrous sulphate or iron (II) sulphate). A solution containing nitrate ion is added to that and hence the brown ring is formed.
Iron exists in (+3) oxidation state and nitrosyl exists in (-1) oxidation state in the complex.

Complete step by step answer:
It is the confirmation test of the nitrate ion.
In a test tube, a solution containing NO3N{{O}_{3}}^{-}ion is taken as a sample such as KNO3KN{{O}_{3}}.
Then, concentrated H2SO4{{H}_{2}}S{{O}_{4}}is added dropwise by keeping the test tube tilted. It is heated in a Bunsen burner and after that freshly prepared greenish FeSO4FeS{{O}_{4}}is added,
Due to the interfering presence of nitrate ion, a brown ring is formed at the separation layer of two compounds which testifies the presence of the ion.
The reactions involved are:
KNO3 + H2SO4  KHSO4 + HNO3 KN{{O}_{3}}\text{ }+\text{ }{{H}_{2}}S{{O}_{4}}\text{ }\to \text{ }KHS{{O}_{4}}\text{ }+\text{ }HN{{O}_{3}}\text{ }
6FeSO4 + 3H2SO4 + HNO3 3Fe2(SO4)3 + 4H2O + 2NO6FeS{{O}_{4}}\text{ + 3}{{H}_{2}}S{{O}_{4}}\text{ + }HN{{O}_{3}}\to \text{ 3F}{{\text{e}}_{2}}{{(S{{O}_{4}})}_{3}}\text{ + 4}{{H}_{2}}O\text{ + }2NO
FeSO4 + NO + 5H2O !![!! Fe(H2O)5(NO) !!]!! SO4 + H2OFeS{{O}_{4}}\text{ + }NO\text{ + 5}{{H}_{2}}O\to \text{ }\\!\\![\\!\\!\text{ Fe(}{{H}_{2}}O{{\text{)}}_{5}}\text{(NO) }\\!\\!]\\!\\!\text{ }S{{O}_{4}}\text{ + }{{H}_{2}}O
(brown ring complex)
The brown ring formula is  !![!! Fe(H2O)5(NO) !!]!! 2+{{\text{ }\\!\\![\\!\\!\text{ Fe(}{{H}_{2}}O{{\text{)}}_{5}}\text{(NO) }\\!\\!]\\!\\!\text{ }}^{2+}}.
So, the correct option is C.

Additional information:
The complex shows anti-ferromagnetism as found from Mossbauer spectroscopy.
Name of the complex – iron(III) pentaaquanitrosyl sulphate

Note: In the second step, it is assumed that oxidation is carried by nascent oxygen [O] which is produced during the reaction. And in the final step, FeSO4FeS{{O}_{4}}exists in aqueous solution as  !![!! Fe(H2O)6 !!]!! SO4\text{ }\\!\\![\\!\\!\text{ Fe(}{{H}_{2}}O{{\text{)}}_{6}}\text{ }\\!\\!]\\!\\!\text{ }S{{O}_{4}}which further reacts with NONO to form the complex. Concentrated H2SO4{{H}_{2}}S{{O}_{4}}must be added dropwise by keeping the test tube tilted or else the reaction will be vigorous and the test tube will blast.