QUESTION IMAGE
Question
directions: write the formulas of the following ionic compounds: 1. potassium iodide 2. magnesium oxide 3. aluminum chloride 4. beryllium phosphide 5. calcium chloride
Step1: Determine the ions
- Potassium ion (\(K^+\)), iodide ion (\(I^-\))
- Magnesium ion (\(Mg^{2+}\)), oxide ion (\(O^{2-}\))
- Aluminum ion (\(Al^{3+}\)), chloride ion (\(Cl^-\))
- Beryllium ion (\(Be^{2+}\)), phosphide ion (\(P^{3-}\))
- Calcium ion (\(Ca^{2+}\)), chloride ion (\(Cl^-\))
Step2: Criss - cross the charges
- For \(K^+\) and \(I^-\): \(K^+I^-\) → \(KI\)
- For \(Mg^{2+}\) and \(O^{2-}\): \(\frac{Mg^{2+}O^{2-}}{2}\) → \(MgO\)
- For \(Al^{3+}\) and \(Cl^-\): \(Al^{3+}(Cl^-)_3\) → \(AlCl_3\)
- For \(Be^{2+}\) and \(P^{3-}\): \(Be_3P_2\) (cross - multiply charges \(2\times3 = 6\), so \(Be_3P_2\))
- For \(Ca^{2+}\) and \(Cl^-\): \(Ca^{2+}(Cl^-)_2\) → \(CaCl_2\)
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- \(KI\)
- \(MgO\)
- \(AlCl_3\)
- \(Be_3P_2\)
- \(CaCl_2\)