Answer: Enthalpy for the dissolution reaction of one mole of aluminum nitrate is -158 kJ/mol.
Explanation:
It is known that the density of water is 1 g/mL. So, mass of water will be calculated as follows.
Mass = volume × density
= [tex]103.2 ml \times 1 g/ml[/tex]
= 103.2 g
Specific heat of water is 4.18 [tex]J/g^{o}C[/tex].
Now, we will calculate the enthalpy of solution as follows.
[tex]\Delta H = m \times C \times \Delta T[/tex]
= [tex]103.2 g \times 4.18 J/g^{o}C \times (23.2 - 17.7)[/tex]
= 2372.5 J
As, 1 J = [tex]10^{-3} kJ[/tex]. So, 2372.5 J will be converted into kJ as follows.
[tex]\Delta H[/tex] = 2.37 kJ
Molar mass of [tex]Al(NO_{3})_{3}[/tex] = 213 g/mol
Hence, moles of [tex]Al(NO_{3})_{3}[/tex] will be calculated as follows.
Moles of [tex]Al(NO_{3})_{3}[/tex] = [tex]\frac{3.20}{213}[/tex]
= 0.015
Therefore, enthalpy for the dissolution will be calculated as follows.
[tex]\Delta H = \frac{-2.37}{0.015}[/tex]
= -158 kJ/mol
Thus, we can conclude that enthalpy for the dissolution reaction of one mole of aluminum nitrate is -158 kJ/mol.
