Final answer:
After reacting 4.27 g of magnesium with 1750 mL of a 2.75 M HCl solution and assuming the volume remains the same, the concentration of the acid solution decreases to approximately 2.55 M.
Step-by-step explanation:
The question asks us to calculate the concentration of HCl solution after it reacts with magnesium (Mg). We start by figuring out how many moles of Mg reacted, use the stoichiometry of the reaction to find out the moles of HCl consumed, and then calculate the new concentration of HCl.
We start with the mass of Mg given:
The molar mass of Mg is approximately 24.305 g/mol, so we calculate the moles of Mg:
Moles of Mg = mass of Mg / molar mass of Mg
Moles of Mg = 4.27 g / 24.305 g/mol ≈ 0.1757 mol
The balanced equation for the reaction is:
Mg + 2HCl → MgCl2 + H2
From the equation, 1 mole of Mg reacts with 2 moles of HCl. So the moles of HCl reacted are:
Moles of HCl reacted = 2 * Moles of Mg
Moles of HCl reacted = 2 * 0.1757 mol ≈ 0.3514 mol
The original moles of HCl in the solution can be calculated from its molarity (M) and volume (V):
M1V1 = moles of HCl (initial)
2.75 M * 1.750 L = 4.8125 mol
Now we can find the moles of HCl remaining after the reaction:
Moles of HCl remaining = initial moles of HCl - moles of HCl reacted
Moles of HCl remaining = 4.8125 mol - 0.3514 mol ≈ 4.4611 mol
Assuming the volume hasn't changed, the new concentration (M2) of the HCl solution is:
M2 = moles of HCl remaining / volume of solution
M2 = 4.4611 mol / 1.750 L ≈ 2.55 M
Therefore, the concentration of the acid solution after all the magnesium has reacted is approximately 2.55 M.