A chemical reaction involves the transformation of substances, where reactants are turned into products through breaking and forming of bonds. In aqueous solutions, reactions often involve ions. For our exercise:
- **Reactants:** \( \text{CaCl}_2 \) and \( \text{Na}_2\text{HPO}_4 \).- **Products:** \( \text{Ca}_3(\text{PO}_4)_2 \) as a precipitate.- **Spectator Ions:** \( \text{Na}^{+} \) and \( \text{Cl}^{-} \) ions remain in the solution unchanged and do not form part of the net ionic equation.
The net ionic equation is central to understanding this process, as it strips away the non-reactive parts and highlights only the species that are involved in the actual reaction. This equation shows the formation of the precipitate:
- \( 3\text{Ca}^{2+} + 2\text{PO}_4^{3-} \rightarrow \text{Ca}_3(\text{PO}_4)_2 \)
Chemical reactions are fundamental in creating new materials and transforming compounds within different environments.