For the reaction ${N_2}_{(g)} + 3{H_2}_{(g)} \rightleftharpoons 2{NH_3}_{(g)}$,the equilibrium constant ${K_P}$ is $5.8 \times 10^5$ at $298 \ K$. Calculate the value of the equilibrium constant ${K_C}$ (in $mol^{-2} \ L^2$) at the same temperature.

  • A
    $5.8 \times 10^5$
  • B
    $3.56 \times 10^8$
  • C
    $5.8 \times 10^2$
  • D
    $1.2 \times 10^6$

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