For the following given equilibrium reaction, K\(_p\) is equal to 1076 at T(K). What is the value of T (in K)?
\[
\text{N}_2(g) + 3\text{H}_2(g) \rightleftharpoons 2\text{NH}_3(g)
\]
Given that \( R = 0.082 \, \text{L atm K}^{-1} \text{mol}^{-1} \), \( K_p = 1076 \), the equation is:
\[
K_p = 1076, \, R = 0.082 \, \text{L atm K}^{-1} \text{mol}^{-1}
\]