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Transcript 
Fall 2016
Chapter 3
Stoichiometry:
Calculations with Chemical
Formulas and Equations
Stoichiometry
Law of Conservation of Mass



The area of study that examines
the quantities of substances
consumed and produced in
chemical reactions is called
stoichiometry.
Lavoisier observed that mass is
conserved in a chemical reaction.
This observation is known as the
law of conservation of mass.
Stoichiometry
1
Fall 2016
Chemical Equations
 Chemical
equations give concise
representations of chemical reactions.
There are two parts to any equation:
 reactants and products
Stoichiometry
Anatomy of a Chemical Equation
CH4 (g) + 2 O2 (g)
CO2 (g) + 2 H2O (g)
Stoichiometry
2
Fall 2016
Anatomy of a Chemical Equation
CH4 (g) + 2 O2 (g)
Reactants appear on the
left side of the equation.
CO2 (g) + 2 H2O (g)
Stoichiometry
Anatomy of a Chemical Equation
CH4 (g) + 2 O2 (g)
Products appear on the
right side of the equation.
CO2 (g) + 2 H2O (g)
Stoichiometry
3
Fall 2016
Anatomy of a Chemical Equation
CH4 (g) + 2 O2 (g)
CO2 (g) + 2 H2O (g)
The states of the reactants and products
are written in parentheses to the right of
each compound.
Stoichiometry
Anatomy of a Chemical Equation
CH4 (g) + 2 O2 (g)
Coefficients are inserted to
balance the equation.
CO2 (g) + 2 H2O (g)
Stoichiometry
4
Fall 2016
Subscripts and Coefficients
Give Different Information

Subscripts tell the number of atoms of
each element in a molecule
Stoichiometry
Subscripts and Coefficients
Give Different Information


Subscripts tell the number of atoms of
each element in a molecule
Coefficients tell the number of
molecules
Stoichiometry
5
Fall 2016
Reaction
Types
Stoichiometry
Combination Reactions


Two or more
substances
react to form
one product
Examples:
N2 (g) + 3 H2 (g)  2 NH3 (g)
C3H6 (g) + Br2 (l)  C3H6Br2 (l)
2 Mg (s) + O2 (g)  2 MgO (s)
Stoichiometry
6
Fall 2016
2 Mg (s) + O2 (g)  2 MgO (s)
Stoichiometry
Decomposition Reactions


One substance breaks
down into two or more
substances
Examples:
CaCO3 (s)  CaO (s) + CO2 (g)
2 KClO3 (s)  2 KCl (s) + 3 O2 (g)
2 NaN3 (s)  2 Na (s) + 3 N2 (g)
Stoichiometry
7
Fall 2016
Combustion Reactions


Rapid reactions that
produce a flame
Most often involve
hydrocarbons reacting
with oxygen in the air
Note: Two types of combustion: complete and incpomplete

Examples:
CH4 (g) + 2 O2 (g)  CO2 (g) + 2 H2O (g)
C3H8 (g) + 5 O2 (g)  3 CO2 (g) + 4 H2O (g)
Stoichiometry
Formula
Weights
Stoichiometry
8
Fall 2016
Formula Weight (FW)
 Sum
of the atomic weights of the atoms
in a chemical formula
 So, the formula weight of calcium
chloride, CaCl2, would be
Ca: 1(40.1 amu)
+ Cl: 2(35.5 amu)
111.1 amu
 These
are generally reported for ionic
compounds
Stoichiometry
Molecular Weight (MW)
 Sum
of the atomic weights of the atoms in
a molecule
 For the molecule ethane, C2H6, the
molecular weight would be
C: 2(12.0 amu)
+ H: 6(1.0 amu)
30.0 amu
Stoichiometry
9
Fall 2016
Percent Composition
One can find the percentage of the mass of
a compound that comes from each of the
elements in the compound by using this
equation:
(number of atoms)(atomic weight)
% element =
(FW of the compound)
x 100
Stoichiometry
Centesimal composition
Routine analysis: CHN analysis
Percent Composition
So the percentage of carbon in ethane is…
(2)(12.0 amu)
%C =
(30.0 amu)
24.0 amu
x 100
=
30.0 amu
= 80.0%
Stoichiometry
10
Fall 2016
Moles
Stoichiometry
Moles
Moles provide a bridge from the molecular scale to
the real-world scale
Stoichiometry
11
Fall 2016
Avogadro’s Number


6.02 x 1023
1 mole of 12C has a mass of 12 g
Stoichiometry
Molar Mass
 By
definition, it is the mass of 1 mol of a
substance (i.e., g/mol)


The molar mass of an element is the mass
number for the element that we find on the
periodic table
The formula weight (in amus) will be the same
number as the molar mass (in g/mol)
Stoichiometry
12
Fall 2016
Mole Relationships


One mole of atoms, ions, or molecules contains
Avogadro’s number of those particles
One mole of molecules or formula units contains
Avogadro’s number times the number of atoms or
ions of each element in the compound
Stoichiometry
Finding
Empirical
Formulas
Stoichiometry
13
Fall 2016
Calculating Empirical Formulas
One can calculate the empirical formula from the
percent composition
Stoichiometry
Calculating Empirical Formulas
The compound para-aminobenzoic acid (PABA) is
composed of carbon (61.31%), hydrogen (5.14%),
nitrogen (10.21%), and oxygen (23.33%). Find the
empirical formula of PABA.
Stoichiometry
14
Fall 2016
Calculating Empirical Formulas
Assuming 100 g of para-aminobenzoic acid,
C:
H:
N:
O:
1 mol
12.01 g
1 mol
5.14 g x
1.01 g
1 mol
10.21 g x
14.01 g
1 mol
23.33 g x
16.00 g
61.31 g x
= 5.105 mol C
= 5.09 mol H
= 0.7288 mol N
= 1.456 mol O
Stoichiometry
Calculating Empirical Formulas
Calculate the mole ratio by dividing by the smallest number
of moles:
C:
5.105 mol
0.7288 mol
= 7.005  7
H:
5.09 mol
0.7288 mol
= 6.984  7
N:
0.7288 mol
0.7288 mol
= 1.000
O:
1.458 mol
0.7288 mol
= 2.001  2
Stoichiometry
15
Fall 2016
Calculating Empirical Formulas
These are the subscripts for the empirical
formula:
C7H7NO2
The empirical formula (relative ratio of
elements in the molecule) may not be
the molecular formula (actual ratio
of elements in the molecule).
Example: ascorbic acid (vitamin C) has
the empirical formula C3H4O3.
The molecular formula is C6H8O6.
Stoichiometry
Molecular Formula

To get the molecular formula from the empirical
formula, we need to know the molecular weight,
MW.

The ratio of molecular weight (MW) to formula
weight (FW) of the empirical formula must be a
whole number.
Stoichiometry
16
Fall 2016
Combustion Analysis

Empirical formulas are routinely determined by
combustion analysis.

A sample containing C, H, and O is combusted in
excess oxygen to produce CO2 and H2O.

The amount of CO2 gives the amount of C originally
present in the sample.

The amount of H2O gives the amount of H originally
present in the sample.
Stoichiometry
Stoichiometry
17
Fall 2016
Stoichiometric Calculations
The coefficients in the balanced equation
give the number of moles of reactants and
products
Stoichiometry
Stoichiometric Calculations
From the mass of
Substance A you can
use the ratio of the
coefficients of A and
B to calculate the
mass of Substance B
formed (if it’s a
product) or used (if
it’s a reactant)
Stoichiometry
18
Fall 2016
Limiting
Reactants
Stoichiometry
How Many Cookies Can I
Make?


You can make cookies
until you run out of one
of the ingredients
Once this family runs
out of sugar, they will
stop making cookies
(…at least any cookies
you would want to eat!)
Stoichiometry
19
Fall 2016
How Many Cookies Can I
Make?

In this example the
sugar would be the
limiting reactant,
because it will limit the
amount of cookies you
can make
Stoichiometry
Limiting Reactants
The limiting reactent is the reactant that
determines how far the reaction will go before it gets
used up, causing the reaction to stop.
The limiting reactent is the reactant that will be
consumed totally
Stoichiometry
20
Fall 2016
Limiting Reactants
The limiting reactent is the reactant you will
run out of first (in this case, the H2)
Stoichiometry
Limiting Reactants
In the example below, the O2 would be the
excess reagent
Stoichiometry
21
Fall 2016
Limiting Reactants
If 20.0 g of Fe2O3 are reacted with 8.00 g Al(s) in the
following reaction,
Which reactant is limiting?
How much is left of the excess reagent ?.
Stoichiometry
Limiting Reactants
If 20.0 g of Fe2O3 are reacted with 8.00 g Al(s) in the
following reaction,
Which reactant is limiting?
How much is left of the excess reagent ?.
Mol of Al= 8/26.98 = 0.297 mole
Mol of Fe2O3 = 20/159.7 = 0.127 mole
nFe2O3
1

n Al
2
So Fe2O3 is the limiting reactant .
0.297-2x0.127= 0.043 moles of Al is left at the end of the
reaction.
Stoichiometry
22
Fall 2016
Theoretical Yield
The theoretical yield is the amount of product
that can be made. In other words it’s the amount
of product possible as calculated through the
stoichiometry problem.
This is different from the actual yield which is the
amount one actually produces and measures.
Stoichiometry
Percent Yield
A comparison of the amount actually
obtained to the amount it was possible to
make
Percent Yield =
Actual Yield
Theoretical Yield
x 100
Stoichiometry
23
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