An indigestion tablet contains a mass of 0.30 g of magnesium hydroxide [Mg(OH)2] as its only basic ingredient - Leaving Cert Chemistry - Question a - 2005

To calculate the mass of salt formed:

1. Determine moles of MgCl2 formed:

   • From the stoichiometry: 1 mol of Mg(OH)2 produces 1 mol of MgCl2
   • Therefore, moles of MgCl2: $0.0104 \text{ mol}$

2. Calculate mass of MgCl2:

   • Molar mass of MgCl2: $24.3 ext{ g/mol (Mg)} + 2 \times 35.5 ext{ g/mol (Cl)} = 95.3 ext{ g/mol}$
   • Thus, mass: $0.0104 \text{ mol} \times 95.3 ext{ g/mol} \approx 0.99 ext{ g}$

To find the number of magnesium ions in MgCl2:

1. Moles of Mg ions in MgCl2:

   • For every 1 mol of MgCl2, there is 1 mol of Mg ions.
   • Therefore: $0.0104 \text{ mol of MgCl}_2 = 0.0104 \text{ mol of Mg}^{2+}$

2. Calculate number of Mg ions:

   • Using Avogadro's number (approximately $6.02 \times 10^{23}$): $0.0104 \text{ mol} \times 6.02 \times 10^{23} \text{ ions/mol} \approx 6.26 \times 10^{21} \text{ Mg}^{2+} \text{ ions}$

To find the volume of the second remedy:

1. Start with the amount of Mg(OH)2 that neutralises equivalent stomach acid:

   • As previously calculated, 0.30 g of Mg(OH)2 allows a neutralisation of 0.0104 mol.

2. For a 6% (w/v) solution:

   • This means 6 g of Mg(OH)2 is present in 100 cm³ of solution.

3. Find how much solution is required for 0.30 g:

   • The mass of Mg(OH)2 in 10 cm³: $\frac{6 ext{ g}}{100 ext{ cm}^3} = 0.06 ext{ g/cm}^3$
   • Therefore, for 0.30 g: $\text{Volume} = \frac{0.30 ext{ g}}{0.06 ext{ g/cm}^3} = 5 ext{ cm}^3$
   • Hence, the required volume is 10 cm³.