What Could It Be? Empirical Formulas The empirical formula is the simplest whole number ratio of the atoms of each element in a compound. Note: it is.

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Presentation transcript:

What Could It Be?

Empirical Formulas The empirical formula is the simplest whole number ratio of the atoms of each element in a compound. Note: it is not necessarily the true formula of the compound. Example: The molecular formula for glucose is C 6 H 12 O 6, but its empirical formula is CH 2 O It’s kind of like a fraction reduced to its lowest terms.

Molecular Formulas The molecular formula gives the actual numbers of each element, and thereby represents the true formula of the compound.

Calculating the Empirical Formula Example 1: A compound is found to contain the following… g Copper g Oxygen Calculate it’s empirical formula.

Calculating the Empirical Formula Step 1: Convert the masses to moles. Copper: Oxygen:

Calculating the Empirical Formula Step 2: Divide all the moles by the smallest value. This gives the “mole ratio”

Calculating the Empirical Formula Step 3: Round off these numbers, they become the subscripts for the elements. Cu 2 O

Example 2: A material is found to be composed of 38.7% Carbon, 51.6% Oxygen, and 9.7% Hydrogen. By other means, it is known that the molecular weight is 62.0 g/mol Calculate the empirical and molecular formula for the compound. If you assume a sample weight of 100grams, then the percents are really grams.

Example 2: A material is found to be composed of 38.7% Carbon, 51.6% Oxygen, and 9.7% Hydrogen. By other means, it is known that the molecular weight is 62.0 Calculate the empirical and molecular formula for the compound. Carbon: Oxygen: Hydrogen:

Example 2: A material is found to be composed of 38.7% Carbon, 51.6% Oxygen, and 9.7% Hydrogen. By other means, it is known that the molecular weight is 62.0 Calculate the empirical and molecular formula for the compound. Carbon: Oxygen: Hydrogen: Now, divide all the moles by the smallest one, 3.23

Example 2: A material is found to be composed of 38.7% Carbon, 51.6% Oxygen, and 9.7% Hydrogen. By other means, it is known that the molecular weight is 62.0 Calculate the empirical and molecular formula for the compound. So, the empirical formula must be CH 3 O The molecular weight of the empirical formula is…. C 12 x 1 = 12 g/mol H 1 x 3 = 3 g/mol O 16 x 1 = 16 g/mol 31 g/mol

Remember, the empirical formula is not necessarily the molecular formula! MW of the empirical formula = 31 MW of the molecular formula = 62

CH 3 O 2 x ( ) = C 2 H 6 O 2 Empirical Formula Molecular Formula

Remember, the molecular formula represents the actual formula.

What if the mole ratios don’t come out even?

Example 3: A compound is analyzed and found to contain 2.42g aluminum and 2.15g oxygen. Calculate its empirical formula. Aluminum: Oxygen: X 2 = 2 X 2 = 3 Al 2 O 3