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27 February, 05:59

The reaction of hydrogen and iodine to produce hydrogen iodide has a Kc of 54.3 at 703 K. Given the initial concentrations of H2 and I2 are 0.453 M, what will the concentration of HI be at equilibrium

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  1. 27 February, 09:46
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    [HI] = 0.7126 M

    Explanation:

    Step 1: Data given

    Kc = 54.3

    Temperature = 703 K

    Initial concentration of H2 and I2 = 0.453 M

    Step 2: the balanced equation

    H2 + I2 ⇆ 2HI

    Step 3: The initial concentration

    [H2] = 0.453 M

    [I2] = 0.453 M

    [HI] = 0 M

    Step 4: The concentration at equilibrium

    [H2] = 0.453 - X

    [I2] = 0.453 - X

    [HI] = 2X

    Step 5: Calculate Kc

    Kc = [Hi]² / [H2][I2]

    54.3 = 4x² / (0.453 - X (0.453-X)

    X = 0.3563

    [H2] = 0.453 - 0.3563 = 0.0967 M

    [I2] = 0.453 - 0.3563 = 0.0967 M

    [HI] = 2X = 2*0.3563 = 0.7126 M
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