`27.6gK_(2)CO_(3)` was treated by a series of reagents so as to convent all of its carbon to `K_(2)Zn_(3)[Fe(CN)_(6)]_(2)` Calculate the weight of the product [mol.wt. of `K_(2)CO_(3)=138` and mol. Wt. of `K_(2)Zn_(3)[Fe(CN)_(6)]_(2)=698]` .
Text Solution
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Here we have no knowledge about series of chemical reactions but we know initial reactant and final product, accordingly. `K_(2)CO_(3) underset("Steps")overset("Several")to K_(2)Zn_(3)[Fe(CN)_(6)]_(2)` Since C atoms are conserved, applying POAC for C atoms, moles of C in `K_(2)CO_(3)` =moles of C in `K_(2)Zn_(3) [Fe(CN)_(6)]_(2)` `1 xx ` moles of `k_(2)CO_(3)=12 xx` moles of `K_(2)Zn_(3)[Fe(CN)_(6)]_(2)` `(because ` 1 mole of `K_(2)CO_(3)` contains 1 moles of `C)` `("wt. of" K_(2)CO_(3))/("mol. wt. of" K_(2)CO_(3))=12xx("wt. of the product")/("mol. wt. of product")` wt. of `K_(2)Zn_(3)[Fe(CN)_(6)]_(2)=(27.6)/(138)xx(698)/(12)=11.6 g`
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