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31 October, 10:29

Using the formula weight of tris (fw = 121.1), how much (to the nearest 0.01 g) is needed to prepare 50 ml of a 0.50 m solution?

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  1. 31 October, 14:22
    0
    3.03 g

    Solution:

    Data Given:

    Molarity = 0.50 mol. L⁻¹

    M. Mass = 121.1 g. mol⁻¹

    Volume = 50 mL = 0.05 L

    Step 1: Calculate moles as,

    Molarity = Moles : Volume

    Solving for Moles,

    Moles = Molarity * Volume

    Putting values,

    Moles = 0.50 mol. L⁻¹ * 0.05 L

    Moles = 0.025 mol

    Step 2: Calculate Mass of Tris as,

    Moles = Mass : M. Mass

    Solving for Mass,

    Mass = Moles * M. Mass

    Putting values,

    Mass = 0.025 mol * 121.1 g. mol⁻¹

    Mass = 3.03 g
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