Empirical and Molecular Formulas
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Transcript Empirical and Molecular Formulas
Empirical and Molecular
Formulas
This presentation has been
brought to you by the CSI Lab
located in N. Haven, Ct.
Empirical and Molecular
Molecular Formula:
Empirical Formula:
The formula for a compound that exist as the
nbr. of atoms.
Ex. H202 Hydrogen Peroxide
Indicate the lowest whole number ratio of
atoms of each element in a compound.
Ex. HO Hydrogen Peroxide
Ho, Ho, Ho!!!
The molecular formula of glucose is…
C6H12O6, , its empirical formula is…
CH2O …
So what’s my point?
Empirical formulas are lowest whole
number ratios of atoms of each type …to
determine them experimentally we
need numbers of atoms!
Consider the following:
Analysis of a compound at CSI North
Haven Labs indicates that it contains
32.38 g Na
22.65 g S
44.99 g O
How can we use this data to determine
the formula?...Think…
Mass number of atoms!
Remember doing mole
conversions?
Use the molar mass of element convert
to moles.
A mole is a number of atoms … you now
have a ratio of atoms in the compound.
Divide each mole amount by the smallest
mole amount… whole # ratio???
Use ratio to write subscripts
1.408 mol Na : 0.7063 mol S : 2.812mol O
Divide each by smallest
1.993 mol Na : 1 mol S : 3.981 mol O
Na2SO4
Try this..
Analysis indicates that a compound
contains 78.1% Boron and 21.9%
hydrogen determine the empirical formula.
Why is this one any different from the last
example?
Assume you have a 100 gram
sample…now how many grams of boron
do you have?
7.22 mol B :
21.7 mol H
Divide through by smallest
1 mol B
:
3.01 mol H
BH3
Try this one …
Analysis of a 10.150 g sample of a
compound known to contain only
phosphorus and oxygen indicates a
phosphorus content of 4.433 g. What is
the empirical formula?
Grams of P = 4.433g Grams of O = ?
Now try it…
0.1431 mol P : 0.3573 mol O
Divide by smallest
1 mol P : 2.497 mol O …
Now what?...Multiply through by two to
obtain whole numbers… 2 : 5
P2O5
HW
Study for quiz next class
Read pgs 229-233
Answer questions #1-3 pg 233
Find empirical formulas and the
empirical masses…
1. 36.48% Na, 25.41% S, 38.11 % O…
Na2SO3
126 g/mol
2. 53.70 % iron and 46.30% sulfur…
Fe2S3
3.
208 g/mol
1.04 g K, 0.70 g Cr and 0.86 g O…
K2CrO4
194 g/mol
4. 36.51% C, 6.20% H and 57.29 % O …
CH2O
30 g/mol
Molecular Formulas
You have already solved for the Empirical
Formula
Now find the mass of the Empirical
Formula
Ex. CH2O ~30 g/mol
You will be given a molecular weight to
start with (~184.62 g/mol)
Now divide the molecular mass by the
Empirical mass
This will tell you the ratio, or the amount
of times that the Empricial Formula goes
into the Molecular formula
Answer should be close to a whole
number
(184.62 g/mol)/(30 g/mol)
6.154 6
Multiply the Empirical Formula by that
whole nbr. and you have the molecular
formula
C6H12O6
Quantitative Analysis
Various methods are used to determine
the mass or percent composition of each
element in a given compound…more
about those later…
Analysis by Combustion
Percent Composition
Believe it or not you’ve already
done it.
% comp.
Tells you the percent of the mass made up
by each element in the compound
The mass of each element in a compound
compared to the entire mass of the
compound and multiplied by 100 %
Find the percent composition of copper (I)
sulfide, Cu2S
A sample of an unkn. Compound with a
mass of 0.2370 g is extracted from the
roots of a plant. Decomposition of the
sample produces 0.09480 g of carbon,
0.1264 g of oxgyen, and 0.0158 g of
hydrogen. What is the percentage comp.
of the compound?
Hydrates
inorganic salts which contain a specific
number of water molecules that are
loosely attached
Written as: CuSO4 • 5H2O
Copper Sulfate with 5 water molecules
Formula for a hydrate
Finding the empirical formula for a hydrate
involves finding the mass difference of the
hydrate and anhydrous salt by driving off
the excess water:
DEMO:
http://www.chem.iastate.edu/group/Green
bowe/sections/projectfolder/flashfiles/stoic
hiometry/empirical.html
Example you conduct an experiment using
CuWO4 • xH2O
Mass of hydrate = 2.286 g
Mass of anhydrous salt = 2.050 g
Mass of H2O driven off = 0.236 g
CuWO4 = 311.4 g/mol
Mol salt = 2.050g (1mol/311.4g) = 0.00658
mol
Mol H2O = 0.236g (1mol/18g) = 0.0131 mol
Divide by the smallest mol amount
0.0131 mol/0.00658 mol =~2 ; 2 water
molecules
CuWO4 • 2H2O
One interesting note!
A compound with a molecular mass of 59.7 g is
determined to be made up of 40% Na and 60%
Cl. What is the Empirical Formula? What is the
Molecular Formula?
Empirical Formula – NaCl
Molecular Formula – NaCl
What are the charges (oxidation nbrs) on the Na
cation and Cl anion?
+1 and -1
What is the overall charge of the cmpd?
ZERO
Oxidation Numbers by Group
0
1+
2+
3+
Tend to have more
than one oxidation
number (+1 to +7)
3+
3+ or 4+
varies
3-
2-
1-
The sum of the oxidation nbrs in an ionic
cmpd must be zero.
Ex. Magnesium Iodide
Mg+2 I-1
Goes to
MgI2
Again the charge on the cmpd is 0
Aluminum Oxide Al2O3?