The rusting of iron is formulated as Fe(...

The rusting of iron is formulated as `Fe_(2)O_(3)*xH_(2)O` which involves the formation of:

`Fe_(2)O_(3)`

`Fe(Oh)_(3)`

`Fe(OH)_(2)`

`Fe_(2)O_(3)+Fe(OH)_(3)`

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The correct Answer is:

due to formation of `Fe_(2)O_(3)+Fe(OH)_(3)`

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The rusting of iron occurs as 4Fe(s)+3O_(2)(g)to 2Fe_(2)O_(3)(s) . Enthalpy of formation of Fe_(2)O_(3)(s) is -824.2 kJ mol^(-1) and entropy change for the reaction, i.e., Delta S_("system") , is -549 J K^(-1) mol^(-1) . Calculate Delta S_("surrounding") and predict whether rusting of iron is spontaneous or not at 298 K.

The brown ring complex compound is formulated as [Fe(H_(2)O_(5))No]SO_(4) . The oxidation state of Fe is

The brown - ring complex compound of iron is formulated as [Fe(H_2O)_5(NO)]SO_4 . The oxidation state of iron is :

The chemical formula of rust is Fe_(3)O_(4).xH_(2)O

NARAYNA-CHEMISTRY OF HEAVY METALS-Passage 13

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