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25 December, 20:38

1. A student needs to make 80mL of a 4.5 x 10^-3 M solution of H_3PO_4 (mm = 98) from solid. Describe how the student would do this.

2. How many moles of AlF_2 are in 4900 mL of of a 5.6M solution? How many moles of F^ - is there?

3. Describe how you would make 750 mL of a. 80M solution of BaCl_2 from a stock solution that is 2.0M?

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  1. 25 December, 23:59
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    1. 35 mg of H₃PO₄

    2. 27 mol AlF₃; 82 mol F⁻

    3. 300 mL of stock solution.

    Explanation:

    1. Preparing a solution of known molar concentration

    dа ta:

    V = 80 mL

    c = 4.5 * 10⁻³ mol·L⁻¹

    Calculations:

    (a) Moles of H₃PO₄

    Molar concentration = moles of solute/litres of solution

    c = n/V

    n = Vc = 0.080L * (4.5 * 10⁻³ mol/1 L) = 3.60 * 10⁻⁴ mol

    (b) Mass of H₃PO₄

    moles = mass/molar mass

    n = m/MM

    m = n * MM = 3.60 * 10⁻⁴ mol * (98 g/1 mol) = 0.035 g = 35 mg

    (c) Procedure

    Dissolve 35 mg of solid H₃PO₄ in enough water to make 80 mL of solution,

    2. Moles of solute.

    dа ta:

    V = 4900 mL

    c = 5.6 mol·L⁻¹

    Calculations:

    Moles of AlF₃ = cV = 4.9 L AlF₃ * (5.6 mol AlF₃/1L AlF₃) = 27 mol AlF₃

    Moles of F⁻ = 27 mol AlF₃ * (3 mol F⁻/1 mol AlF₃) = 82 mol F⁻.

    3. Dilution calculation

    dа ta:

    V₁ = 750 mL; c₁ = 0.80 mol·L⁻¹

    V₂ = ?; c₂ = 2.0 mol·L⁻¹

    Calculation:

    V₁c₁ = V₂c₂

    V₂ = V₁ * c₁/c₂ = 750 mL * (0.80/2.0) = 300 mL

    Procedure:

    Measure out 300 mL of stock solution. Then add 500 mL of water.
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