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There are two main methods for applying Hess' Law in calculations: using enthalpies of formation or enthalpies of combustion.
The standard enthalpy change of formation () is the enthalpy change when 1 mole of a compound is formed from its elements in their standard states.
Note: The of an element in its standard state is zero because the element is formed from itself.
The standard enthalpy change of combustion () is the enthalpy change when 1 mole of a substance is completely burned in oxygen.
Note: For combustion reactions, the enthalpy of oxygen is typically ignored because you cannot burn oxygen in oxygen.
Step 1: Identify the relevant reactions and the enthalpy values (either formation or combustion).
Step 2: Set up a Hess Cycle, showing all the different routes for the reaction.
Step 3: Apply Hess' Law by equating the total enthalpy change of different routes, ensuring all arrows are in the correct direction.
Step 4: Perform the calculation by adding or subtracting the enthalpy values, treating them like vectors.
Hess' Law can be applied to the thermal decomposition of sodium hydrogen carbonate, which cannot be measured directly.
The reaction is:
Using Hess' Law, we can calculate the enthalpy change for this reaction by considering the formation enthalpies of sodium carbonate, carbon dioxide, and water, as well as sodium hydrogen carbonate.
In the hydration of magnesium sulfate:
The enthalpy change for this process can be determined using Hess' Law by combining the enthalpy changes of formation for anhydrous magnesium sulfate, water, and hydrated magnesium sulfate.
For the hydration of copper(II) sulfate:
By applying Hess' Law, we can calculate the enthalpy change using the enthalpy of formation values for anhydrous copper sulfate, water, and hydrated copper sulfate.
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