itm5 ; Combustion of 6.650 mg of an unknown sample yielded 6.648 mg water, and 16.24...
itm5 ; Combustion of 6.650 mg of an unknown sample yielded 6.648 mg water, and 16.24 mg carbon dioxide. Data analysis found that the sample was only composed of carbon, hydrogen, and oxygen.
Part A
How many moles of carbon were in the original compound?
Part B
How many moles of hydrogen were in the original compound?
Part C
Give the empirical formula of the unknown sample.
Homework Answers
Part A. 1 moles of CO2 has 1 moles of C
moles of CO2 = g/molar mass = 0.01624/44.01 = 3.70 x 10^-4 mols
So, moles of carbon = 3.70 x 10^-4 mols
Part B. 1 moles of H2O has 2 moles of hydrogen
moles of H2O = 0.006648/18.015 = 3.70 x 10^-4 mols
moles of Hydrogen = 2 x 3.70 x 10^-4 = 7.38 x 10^-4 mols
Part C. divide mols of C and H by smallest number
C = 3.70 x 10^-4 mols/3.70 x 10^-4 mols = 1
H = 7.38 x 10^-4 mols/3.70 x 10^-4 mols = 2
empirical formaula thus becomes = CH2
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