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4 January, 06:21

A 0.180 mole quantity of NiCl 2 is added to a liter of 1.20 M NH 3 solution. What is the concentration of Ni 2 + ions at equilibrium? Assume the formation constant of Ni (NH 3) 2 + 6 is 5.5 * 10 8.

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  1. 4 January, 06:42
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    1.09 x 10⁻⁴ M

    Explanation:

    The equation of the reaction in given by

    Ni²⁺ (aq) + 6NH₃ (aq) ⇔ Ni (NH₃) ₆

    At the beginning o the reaction, we have 0.18M concentration of Ni and 1.2M concentration of aqueous NH₃ and zero concentration of the product

    As the reaction proceeds towards equilibrium, the concentration of the reactants decrease as the concentration of the product starts to increase

    From the equation,

    1 mole of Ni²⁺ reacts with 6 moles of aqueous NH₃ to give 1mole of Ni (NH3)

    therefore

    0.18 M of Ni would react with 1.08M (6 x 0.18M) aqueous NH₃ to give 0.18M of Ni (NH₃) 6

    At equilibrium,

    1.08M of NH3 would have reacted to form the product leaving

    (1.2 - 1.08) M = 0.12M of aqueous NH₃ left as reactant.

    Therefore, formation constant K which is the ratio of the concentration of the product to that of the reactant is given by

    K = [Ni (NH₃) ₆} / [Ni²⁺] 6[NH₃]

    5.5 x 10⁸ = 0.18 M / [Ni²⁺] [0.12]⁶

    [Ni²⁺] = 0.18 M / (5.5 x 10⁸) (2.986 x 10⁻⁶)

    =0.18 M / 0.00001642

    = 1.09 x 10⁻⁴ M

    [Ni]²⁺ = 1.09 x 10⁻⁴ M

    Hence the concentration of Ni²⁺ is 1.09 x 10⁻⁴ M
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