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Question
phosphoric acid ($ce{h_3po_4}$) is a polyprotic acid. write balanced chemical equations for the sequence of reactions that phosphoric acid can undergo when its dissolved in water.
Step1: First Ionization
Phosphoric acid ($\ce{H3PO4}$) donates one $\ce{H+}$ to water. The reaction is $\ce{H3PO4(aq) + H2O(l) <=> H2PO4^{-}(aq) + H3O^{+}(aq)}$.
Step2: Second Ionization
The $\ce{H2PO4^{-}}$ formed donates another $\ce{H+}$. The reaction is $\ce{H2PO4^{-}(aq) + H2O(l) <=> HPO4^{2-}(aq) + H3O^{+}(aq)}$.
Step3: Third Ionization
The $\ce{HPO4^{2-}}$ donates the last $\ce{H+}$. The reaction is $\ce{HPO4^{2-}(aq) + H2O(l) <=> PO4^{3-}(aq) + H3O^{+}(aq)}$.
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- $\ce{H3PO4(aq) + H2O(l) <=> H2PO4^{-}(aq) + H3O^{+}(aq)}$
- $\ce{H2PO4^{-}(aq) + H2O(l) <=> HPO4^{2-}(aq) + H3O^{+}(aq)}$
- $\ce{HPO4^{2-}(aq) + H2O(l) <=> PO4^{3-}(aq) + H3O^{+}(aq)}$