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 shows the smallest whole-number ratio of the atoms in the compound  CH only means it is a 1:1 ration between carbon and hydrogen  could be C 2 H 2.

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Presentation on theme: " shows the smallest whole-number ratio of the atoms in the compound  CH only means it is a 1:1 ration between carbon and hydrogen  could be C 2 H 2."— Presentation transcript:

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2  shows the smallest whole-number ratio of the atoms in the compound  CH only means it is a 1:1 ration between carbon and hydrogen  could be C 2 H 2 (ecetylene), or C 6 H 6 (benzene), or C 8 H 8 (styrene)

3  What is the empirical formula of a compound that’s mass is 25.9% N and 74.1% O?  if there were 100g of this compound then 25.9g would be nitrogen and 74.1g oxygen  change to moles in order to convert the % to a number  25.9g N x 1 mol N = 1.85 mol N 14.0 g N  74.1g O x 1 mol O = 4.63 mol O 16.0 g O

4  a formula is not just the ratio of atoms, it is also the ratio of moles  this leaves a ratio of N 1.85 O 4.63 which is not a whole number  therefore, divide each by the lowest quantity (in this case, 1.85)  now is N 1 O 2.5  again, still not a whole number, but if you were to double it, it would be N 2 O 5  the empirical formula is N 2 O 5

5  Calculate the empirical formula of a compound composed of 38.67 % C, 16.22 % H, and 45.11 %N.  Assume 100 g so…  38.67 g C x 1mol C = 3.220 mole C 12.01 g C  16.22 g H x 1mol H = 16.09 mole H 1.01 g H  45.11 g N x 1mol N = 3.219 mole N 14.01 g N

6  3.220 mole C  16.09 mole H  3.219 mole N  C 1 H 5 N 1 is the empirical formula C 3.22 H 16.09 N 3.219 If we divide all of these by the smallest number (3.22), it will give us whole numbers and therefore the empirical formula

7 CompoundMolecular FormulaEmpirical Formula WaterH2OH2OH2OH2O Hydrogen PeroxideH2O2H2O2 HO GlucoseC 6 H 12 O 6 CH 2 O MethaneCH 4 EthaneC2H6C2H6 CH 3 OctaneC 8 H 18 C4H9 C4H9

8  a molecular formula is the same as, or a multiple of, the empirical formula  it is based on the actual number of atoms of each type in the compound  the following have the same ratio of elements and therefore the same empirical formula– CH 2 O, however, many molecules can have that ratio, each having a different molecular formula  C 2 H 4 O 2 is the molecular formula of ethanoic acid  CH 2 O is the molecular formula of methanal  C 6 H 12 O 6 is the molecular formula of glucose

9  divide the experimental molar mass by the mass of one mole of the empirical formula  this results in the multiplier to convert to the molecular formula  calculate the molecular formula of a compound whose molar mass is found to be 60.0g and has an empirical formula of CH 4 N  experimental molar mass --- 60.0 g empirical molar mass --------- 30.0 g  2 (CH 4 N) = C 2 H 8 N 2 = 2

10  A compound is known to be composed of 71.65 % Cl, 24.27% C and 4.07% H. Its molar mass is known is known to be 98.96 g. What is its molecular formula?  need to calculate the empirical formula first  assume 100 g so…  71.65 g Cl x 1mol Cl = 2.02 mole Cl 35.5 g Cl  24.27 g C x 1mol C = 2.02 mole C 12.0 g C  4.07 g H x 1mol H = 4.07 mole H 1.0 g H

11  Cl 2.02 C 2.02 H 4.07  divide by lowest (2.02 mol )  Cl 1 C 1 H 2 is the empirical formula  this would give an empirical formula mass of 48.5 g  recall the problem asked for the molecular formula of a compound with a molar mass of 98.96 g which is twice that of 48.5 g  therefore, Cl 2 C 2 H 4 is the molecular formula

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