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15 July, 21:19

What volume of a 3.5 M LiOH solution is needed to titrate 253 ml of a 2.75 M HF solution?

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  1. 16 July, 00:18
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    198.8mL

    Explanation:

    Step 1:

    Data obtained from the question:

    Molarity of base (Mb) = 3.5M

    Volume of base (Vb) = ... ?

    Molarity of acid (Va) = 2.75M

    Volume of acid (Va) = 253mL

    Step 2:

    The balanced equation for the reaction.

    HF + LiOH - > LiF + H2O

    From the balanced equation above,

    The mole ratio of the acid (nA) = 1

    The mole ratio of the base (nB) = 1

    Step 3:

    Determination of the volume of the base, LiOH needed for the reaction.

    The volume of the base needed for the reaction can be obtained as follow:

    MaVa / MbVb = nA/nB

    2.75 x 253 / 3.5 x Vb = 1

    Cross multiply

    3.5 x Vb = 2.75 x 253

    Divide both side by 3.5

    Vb = 2.75 x 253 / 3.5

    Vb = 198.8mL

    Therefore, the volume of the base needed for the reaction is 198.8mL
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