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For the reaction $$\frac{1}{3} N_2(g) + H_2(g) \rightleftharpoons \frac{2}{3} NH_3(g)$$, the magnitude of $K_c$ at 25 °C is: A - VCE - SSCE Chemistry - Question 14 - 2020 - Paper 1

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For-the-reaction--$$\frac{1}{3}-N_2(g)-+-H_2(g)-\rightleftharpoons-\frac{2}{3}-NH_3(g)$$,-the-magnitude-of-$K_c$-at-25-°C-is:--A-VCE-SSCE Chemistry-Question 14-2020-Paper 1.png

For the reaction $$\frac{1}{3} N_2(g) + H_2(g) \rightleftharpoons \frac{2}{3} NH_3(g)$$, the magnitude of $K_c$ at 25 °C is: A. 9 and $\Delta H = -30.8$ kJ mol$^{-... show full transcript

Worked Solution & Example Answer:For the reaction $$\frac{1}{3} N_2(g) + H_2(g) \rightleftharpoons \frac{2}{3} NH_3(g)$$, the magnitude of $K_c$ at 25 °C is: A - VCE - SSCE Chemistry - Question 14 - 2020 - Paper 1

Step 1

Determine the equilibrium constant and its relation to ΔH

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Answer

To find the magnitude of the equilibrium constant (KcK_c) at 25 °C, we can refer to the equation that relates KcK_c and the enthalpy change (ΔH\Delta H). A general relationship is given by van 't Hoff's equation:

ln(Kc2Kc1)=ΔHR(1T21T1)\ln\left(\frac{K_{c2}}{K_{c1}}\right) = -\frac{\Delta H}{R} \left(\frac{1}{T_2} - \frac{1}{T_1}\right)

Where:

  • RR is the gas constant, approximately 8.318.31 J mol1^{-1} K1^{-1}.
  • T is the temperature in Kelvin.

For this problem, we analyze the possible options and their corresponding ΔH values, recognizing that KcK_c should increase with a decrease in ΔH\Delta H since the reaction is exothermic.

Step 2

Evaluate each option

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Answer

Based on the given options:

  • Option A: Kc=9K_c = 9, ΔH=30.8\Delta H = -30.8 kJ mol1^{-1}
  • Option B: Kc=213K_c = 213, ΔH=30.8\Delta H = -30.8 kJ mol1^{-1}
  • Option C: Kc=640K_c = 640, ΔH=30.8\Delta H = -30.8 kJ mol1^{-1}
  • Option D: Kc=640K_c = 640, ΔH=92.3\Delta H = -92.3 kJ mol1^{-1}

We can rule out options that contradict the principles of thermodynamics. The logical option would be where KcK_c has a notable increase while remaining consistent with the ΔH values.

Step 3

Select the correct answer

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Answer

From our evaluation, the most appropriate choice that reflects a sound relationship between the equilibrium constant and enthalpy change is B. 213 and ΔH=30.8\Delta H = -30.8 kJ mol1^{-1}.

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