Respuesta :
Given:
Mass of Ag = 1.67 g
Mass of Cl = 2.21 g
Heat evolved = 1.96 kJ
To determine:
The enthalpy of formation of AgCl(s)
Explanation:
The reaction is:
2Ag(s) + Cl2(g) → 2AgCl(s)
Calculate the moles of Ag and Cl from the given masses
Atomic mass of Ag = 108 g/mol
# moles of Ag = 1.67/108 = 0.0155 moles
Atomic mass of Cl = 35 g/mol
# moles of Cl = 2.21/35 = 0.0631 moles
Since moles of Ag << moles of Cl, silver is the limiting reagent.
Based on reaction stoichiometry: # moles of AgCl formed = 0.0155 moles
Enthalpy of formation of AgCl = 1.96 kJ/0.0155 moles = 126.5 kJ/mol
Ans: Formation enthalpy = 126.5 kJ/mol
Answer: The enthalpy of formation of AgCl is -127.3 kJ/mol
Explanation:
To calculate the number of moles, we use the equation:
[tex]\text{Number of moles}=\frac{\text{Given mass}}{\text{Molar mass}}[/tex]
Given mass of silver chloride = 2.21 g
Molar mass of silver chloride = 143.32 g/mol
Putting values in above equation, we get:
[tex]\text{Moles of silver chloride}=\frac{2.21g}{143.32g/mol}=0.0154mol[/tex]
Sign convention of heat:
When heat is absorbed, the sign of heat is taken to be positive and when heat is released, the sign of heat is taken to be negative.
To calculate the enthalpy change of formation of AgCl, we use the equation:
[tex]\Delta H_f_{AgCl}=\frac{q}{n}[/tex]
where,
[tex]q[/tex] = amount of heat released = -1.96 kJ
n = number of moles of AgCl = 0.0154 moles
[tex]\Delta H_f_{AgCl}[/tex] = enthalpy of formation of silver chloride
Putting values in above equation, we get:
[tex]\Delta H_f_{AgCl}=\frac{-1.96kJ}{0.0154mol}=127.3kJ/mol[/tex]
Hence, the enthalpy of formation of AgCl is -127.3 kJ/mol
