The enthalpy of combustion of methanol (GFM = 32.0 g) is −726 kJ mol−1 - Scottish Highers Chemistry - Question 7 - 2023

Question 7

The enthalpy of combustion of methanol (GFM = 32.0 g) is −726 kJ mol−1.
What mass of methanol has to be burned to produce 145.2 kJ?
Worked Solution & Example Answer:The enthalpy of combustion of methanol (GFM = 32.0 g) is −726 kJ mol−1 - Scottish Highers Chemistry - Question 7 - 2023
Calculate the moles of methanol needed for 145.2 kJ

Only available for registered users.
Sign up now to view full answer, or log in if you already have an account!
To find out how many moles of methanol are needed to produce 145.2 kJ, we can use the enthalpy of combustion:
The enthalpy of combustion of methanol is −726 kJ/mol. From this, we can calculate the moles needed:
n=Enthalpy changeEnergy required=726 kJ/mol145.2 kJ=0.199 mol
Convert moles to grams

Only available for registered users.
Sign up now to view full answer, or log in if you already have an account!
Now, we can convert the moles of methanol into grams using its molar mass:
The molar mass of methanol is 32.0 g/mol. Thus, the mass can be calculated as:
Mass=n×Molar mass=0.199 mol×32.0 g/mol=6.368 g
Rounding to three significant figures, the mass of methanol needed is approximately 6.4 g.
Join the Scottish Highers students using SimpleStudy...
97% of StudentsReport Improved Results
98% of StudentsRecommend to friends
100,000+ Students Supported
1 Million+ Questions answered
;