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4 March, 19:29

How many grams of Cabr2 would be needed to create 450 mL of a 2.00 M solution?

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  1. 4 March, 19:45
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    Mass = 179.9 g

    Explanation:

    Given dа ta:

    Volume of solution = 450 mL

    Molarity of solution = 2.00 M

    Mass in gram required = ?

    Solution:

    Volume of solution = 450 mL * 1 L / 1000 mL = 0.45 L

    Molarity = number of moles of solute / Volume of solution in L

    2.00 M = number of moles of solute / 0.45 L

    Number of moles of solute = 2.00 M * 0.45 L

    M = mol/L

    number of moles of solute = 0.9 mol

    Mass of CaBr₂ in gram:

    Mass = number of moles * molar mass

    Mass = 0.9 mol * 199.89 g/mol

    Mass = 179.9 g
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