What will happen if more heat is applied to the following system at equilibrium?
X\(_2\)(g) + 3Y\(_2\)(g) ⇌ 2XY\(_3\)(g); ∆H = xKJmol\(^{-1}\)
The correct answer is C. More of X2 will react
Increase in temperature will cause the forward reaction to occur, increasing the amounts of the products and decreasing the amounts of reactants.
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