Given the thermochemical equations X 2 + 3 Y 2 ⟶ 2 XY 3 Δ H 1 = - 380 kJ X 2 + 2 Z 2 ⟶ 2 XZ 2 Δ H 2 = - 130 kJ 2 Y 2 + Z 2 ⟶ 2 Y 2 Z Δ H 3 = - 260 kJ Calculate the change in enthalpy for the reaction. 4 XY 3 + 7 Z 2 ⟶ 6 Y 2 Z + 4 XZ 2
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