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24 March, 17:42

A reaction will be spontaneous only at low temperatures if both ΔH and ΔS are negative. For a reaction in which ΔH = - 320.1 kJ/mol and ΔS = - 86.00 J/K · mol.

Determine the temperature (in °C) below which the reaction is spontaneous.

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  1. 24 March, 20:00
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    This reaction is spontaneous for temperature lower than 3722.1 Kelvin or 3448.95 °C

    Explanation:

    Step 1: Data given

    ΔH = - 320.1 kJ/mol

    ΔS = - 86.00 J/K · mol.

    Step 2: Calculate the temperature

    ΔG<0 = spontaneous

    ΔG = ΔH - TΔS

    ΔH - TΔS <0

    -320100 - T * (-86) <0

    -320100 + 86T < 0

    -320100 < - 86T

    320100/86 > T

    3722.1 > T

    The temperature should be lower than 3722.1 Kelvin ( = 3448.9 °C)

    We can prove this with Temperature T = 3730 K

    -320100 - 3730 * (-86) <0

    -320100 + 320780 = 680 this is greater than 0 so it's non spontaneous

    T = 3700 K

    -320100 - 3700 * (-86) <0

    -320100 + 318200 = - 1900 this is lower than 0 so it's spontaneous

    The temperature is quite high because of the big difference between ΔH and ΔS.

    This reaction is spontaneous for temperature lower than 3722.1 Kelvin or 3448.95 °C
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