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ChemistryChemistry
4 June, 18:03

A mixture consisting of 0.250 M N2 (g) and 0.500 M H2 (g) reaches equilibrium according to the equation N2 (g) + 3 H2 (g) → 2 NH3 (g). At equilibrium, the concentration of ammonia is 0.150 M. Calculate the concentration of N2 (g) at equilibrium. A. 0.0750 MB. 0.350 MC. 0.425 MD. 0.275 ME. 0.150 M

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  1. 4 June, 18:08
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    The concentration of N2 at the equilibrium is 0.175 M (it's not between the options)

    Explanation:

    Step 1: Data given

    Mixture contains 0.250 M N2 and 0.500 M H2

    At the equilibrium [NH3] = 0.150 M

    Step 2: The balanced equation

    N2 (g) + 3 H2 (g) → 2 NH3 (g)

    Step 3: The initial concentrations:

    [N2] = 0.250M

    [H2] = 0.500 M

    [NH3] = 0 M

    Since [NH3] gained 0.15 M in going to equilibrium, then H2 lost (0.150) * (3/2) = 0.225

    [H2] at the equilibrium = 0.500 - 0.225 = 0.275 M

    N2 lost (0.150/2) M = 0.075 M

    [N2]at the equilibrium = 0.250 - 0.075 = 0.175 M

    The concentration of N2 at the equilibrium is 0.175 M (it's not between the options)
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Home » Chemistry » A mixture consisting of 0.250 M N2 (g) and 0.500 M H2 (g) reaches equilibrium according to the equation N2 (g) + 3 H2 (g) → 2 NH3 (g). At equilibrium, the concentration of ammonia is 0.150 M. Calculate the concentration of N2 (g) at equilibrium. A.
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