Calculate the mass of anhydrous `Ca_3(PO_4)_2` present in 150 ml of 0.25 M solution.

To calculate the mass of anhydrous \( \text{Ca}_3(\text{PO}_4)_2 \) present in 150 ml of a 0.25 M solution, follow these steps: ### Step 1: Calculate the number of moles of \( \text{Ca}_3(\text{PO}_4)_2 \) The number of moles can be calculated using the formula: \[ \text{Moles} = \text{Molarity} \times \text{Volume (in liters)} \] Given: - Molarity = 0.25 M - Volume = 150 ml = 0.150 L (since 1 L = 1000 ml) Now, substituting the values: \[ \text{Moles} = 0.25 \, \text{mol/L} \times 0.150 \, \text{L} = 0.0375 \, \text{moles} \] ### Step 2: Calculate the molar mass of \( \text{Ca}_3(\text{PO}_4)_2 \) To find the molar mass, we need to add up the atomic masses of all the atoms in the formula: - Calcium (Ca): 40.08 g/mol - Phosphorus (P): 30.97 g/mol - Oxygen (O): 16.00 g/mol The molar mass calculation is as follows: \[ \text{Molar mass of } \text{Ca}_3(\text{PO}_4)_2 = (3 \times 40.08) + (2 \times 30.97) + (8 \times 16.00) \] Calculating each part: - \( 3 \times 40.08 = 120.24 \, \text{g/mol} \) - \( 2 \times 30.97 = 61.94 \, \text{g/mol} \) - \( 8 \times 16.00 = 128.00 \, \text{g/mol} \) Now, adding these together: \[ \text{Molar mass} = 120.24 + 61.94 + 128.00 = 310.18 \, \text{g/mol} \] ### Step 3: Calculate the mass of \( \text{Ca}_3(\text{PO}_4)_2 \) Now, we can calculate the mass using the formula: \[ \text{Mass} = \text{Number of moles} \times \text{Molar mass} \] Substituting the values: \[ \text{Mass} = 0.0375 \, \text{moles} \times 310.18 \, \text{g/mol} = 11.62 \, \text{g} \] ### Final Answer: The mass of anhydrous \( \text{Ca}_3(\text{PO}_4)_2 \) present in 150 ml of 0.25 M solution is approximately **11.62 grams**. ---