First, we need to calculate the moles of NaOH dissolved:Molar mass of NaOH = 22.99 g/mol Na + 15.999 g/mol O + 1.007 g/mol H = 39.996 g/molmoles of NaOH = 2.50 g / 39.996 g/mol = 0.0625 molNext, we need to calculate the heat absorbed by the calorimeter:T = T_final - T_initial = 29.2C - 24.0C = 5.2Cq_calorimeter = C_calorimeter * T = 25.2 J/C * 5.2C = 131.04 JSince the heat absorbed by the calorimeter is equal to the heat released by the dissolution reaction, we have:q_reaction = -131.04 J = -0.13104 kJNow, we can calculate the enthalpy change of the dissolution reaction per mole of NaOH:H_reaction = q_reaction / moles of NaOH = -0.13104 kJ / 0.0625 mol = -2.09664 kJ/molFinally, we can calculate the standard enthalpy change of the dissolution reaction using the molar enthalpy of hydration of Na+ and OH- ions:H_dissolution = H_reaction - H_hydration Na+ - H_hydration OH- H_dissolution = -2.09664 kJ/mol - -406.8 kJ/mol - -230.0 kJ/mol H_dissolution = 634.70336 kJ/molThe standard enthalpy change of the dissolution reaction of NaOH in water is approximately 634.7 kJ/mol.