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Second Order Kinetics
rate = - ∆A∆t
= k1[A]2
A (+ other reactants) → products
[A]t = concentration of A at some time = t
[A]o = concentration of A at time t = 0 (initial concentration)
k2 = second order rate constant (units = M-1s-1, M-1min-1, M-1h-1, etc)
Second Order Integrated Rate Equation
1[A]t
= k2t +1
[A]o
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Some mathematics:
Half Life and Second Order Reactions
[A]t = half life = ½[A]o1
[A]t= k2t +
1[A]o
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Example 13.7 - Iodine atoms combine to form molecular iodine in the gas phase -
I(g) + I(g) → I2(g)
This reaction follows second-order kinetics and has the high rate constant 7.0 x 109/M·s at 23 oC. (a) If the initial concentration of I was 0.086 M, calculate the concentration after 2.0 min. (b) Calculate the half-life of the reaction if the initial concentration of I is 0.60 M and if it is 0.42 M.
Example 13.7 - solution
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[A] is the concentration of A at any time t[A]0 is the concentration of A at time t=0
t½ = t when [A] = [A]0/2
t½ = [A]02k
[A] = [A]0 - kt
Summary of the Kinetics of Zero-Order, First-Orderand Second-Order Reactions
Order Rate LawConcentration-Time
Equation Half-Life
0
1
2
rate = k
rate = k [A]
rate = k [A]2
ln[A] = ln[A]0 - kt
1[A]
= 1[A]0
+ kt
[A] = [A]0 - kt
t½0.693
k=
t½ = [A]02k
t½ = 1k[A]0
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Activation Energy and Temperature Dependence of Rate Constants
Reaction rates increase with temperature. The reason is explained by Collision Theory.
The Collision Theory of Chemical ReactionsMolecules in the gas and liquid states are in constant random movement (Kinetic Molecular Theory)
1. The reacting molecules must collide with one another (at 25 oC and 1 atm in the gas phase there are about 1030 collisions/L•s). Since most reaction rates are much smaller than this, there must be other factors involved......
2. The reacting molecules must collide with sufficient energy to break bonds.
3. The molecules must collide in an orientation that can lead to rearrangement of the atoms.
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Effect of Concentration (Collisions) on Rate
rate α number of collisionssec
(a) 4 collisions between A and B
(b) double A or B and now there are 8 collisions, so rate doubles
A B
For this example, rate = k[A][B]
Activation EnergyThe minimum amount of energy required to initiate a chemical reaction. When molecules collide they form an "activated complex" or "transition state", a temporary species formed during the collision where bonds are being broken and formed simultaneously.
activated complex)
activated complex)
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Temperature, Reaction Rate, and Activation Energy
For example, if the activation energy is 266 kJ/mol, then raising the temperature increases the number of molecules with this energy, and the reaction rate increases.
NO2 + CO → NO + CO2 ∆Ho = -226 kJ/mol
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Forward Reaction
Ea = 132 kJ/mol
∆Ho = -226 kJ/mol (exothermic)
Reverse Reaction
Ea' = 132 kJ/mol + 226 kJ/mol = 358 kJ/mol
∆Ho = +226 kJ/mol (endothermic)
The Transition State or “Activated Complex”
H2(g) + I2(g) → 2 HI(g) ∆H = -13 kJ
H2 + I2
2 HI
I I
H H
Transition state or activated complex
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Transition state - bonds between reactants are breaking at the same time that bonds are forming between the products
I I
H HH - H
I - I→ →
H H
I I
Bonds breaking
Bonds forming
Effect of Molecular Orientation
2 AB → A2 + B2 (2 HCl → H2 + Cl2)
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Another example:
F- + CH3 - Cl → F - CH3 + Cl-
The Arrhenius EquationRelationship between reaction rate, temperature and activation energy.
k = A·e-Ea/RT
k = rate constant (M-1s-1)
A = frequency of collisions with correct geometry
Ea = activation energy (kJ/mol)
R = ideal gas law constant = 8.314 X 10-3 kJ/mol•K
T = Kelvin temperature
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Ea = 40 kJ/mol
Ea = 30 kJ/mol
Ea = 20 kJ/mol
Increasing T increases the fraction of molecules with E > Ea
Linearization of the Arrhenius EquationReaction rates are measured at a variety of temperatures; the activation energy and collisional frequency factor can be determined graphically.
k = A·e-Ea/RT
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Example 13.8 - The rate constants for the decomposition of acetaldehyde
CH3CHO(g) → CH4(g) + CO(g)
were measured at five different temperatures. The data are shown in the table. Plot ln(k) versus 1/T and determine the activation energy (in kJ/mol) for the reaction. Note that the reaction is "3/2" order in CH3CO, so k has units of 1/M1/2·s.
k (1/M1/2·s) T (K) ln(k) 1/T (K-1)
0.011 700
0.035 730
0.105 760
0.343 790
0.789 810
Example 13.8 - solution
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We can also measure rate constants at two different temperatures and derive a formula relating them to the activation energy-
Example 13.9 - The rate constant of a first order reaction is 3.46 x 10-2 s-1 at 298 K. What is the rate constant at 350 K if the activation energy for the reaction is 50.2 kJ/mol?
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Reaction Mechanisms
The study of reaction KINETICS gives insight into reaction MECHANISMS - the sequence of bond-making and bond-breaking steps in a chemical reaction.
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Most reactions involve a sequence of steps -
Step 1 Br2(g) + NO(g) → Br2NO(g)
Step 2 Br2NO(g) + NO(g) → 2 BrNO(g)
Overall Br2(g) + 2 NO(g) → 2 BrNO(g)Reaction
“intermediate”
Each step in the mechanism is called an “elementary step” and has it’s own Ea and rate constant, k.
Br2(g) + NO(g)Br2NO(g)[+ NO(g)]
2 BrNO(g)
Ea1Ea2
Reaction coordinate →
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Molecularity of Elementary Steps
1 molecule = unimolecular2 molecules = bimolecular3 molecules = termolecular
1. Molecularities greater than termolecular are improbablebecause it's difficult to have 4 or more molecules colliding simultaneously with the correct energy and orientation.
2. The exponents in the rate expressions for elementary steps ARE the same as the stoichiometric coefficients in each elementary step. The reason why the exponents in the overall reaction are not necessarily the same as in the rate law is because of the presence sometimes of a SLOW rate-determining step.
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Reaction mechanisms have a RATE DETERMINING STEP -the slowest step in the mechanism.
2 NH3 + OCl- → N2H4 + Cl- + H2O
Step 1 NH3 + OCl- → NH2Cl + OH- fastStep 2 NH2Cl + NH3 → N2H5
+ + Cl- slow
Step 3 N2H5+ + OH- → N2H4 + H2O fast
Overall Reaction
2 NH3 + OCl- → N2H4 + Cl- + H2O
The overall rate expression must be consistent with the SUM of the elementary steps leading up to and including the slow step.
Step 1 NH3 + OCl- → NH2Cl + OH- fastStep 2 NH2Cl + NH3 → N2H5
+ + Cl- slowOverall up to and including the slow step
2 NH3 + OCl- → products
Step 3 N2H5+ + OH- → N2H4 + H2O
so fast it has no effect on overall reaction rate
so the rate law HAS to be rate = k[NH3]2[OCl-]
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Writing plausible reaction mechanisms:
• The sum of the elementary steps must give the overall balanced equation for the reaction.
• The sum of the elementary steps up to and including the rate-determining step should predict the same rate law that is determined experimentally.
• the detection of an intermediate supports a given mechanism
• The rate-determining step is the slowest step in the sequence of steps leading to product formation.
Example 13.10 - The gas-phase decomposition of nitrous oxide (N2O) is believed to occur via two elementary steps:
Step 1: N2O → N2 + O
Step 2: N2O + O → N2 + O2
Experimentally the rate law is found to be rate = k[N2O]. (a) Write the equation for the overall reaction. (b) Identify the intermediates. (c) What can you say about the relative rates of steps 1 and 2?
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CatalystsThere are two ways to increase the reaction rate -
1. Increase the temperature - reaction rate increases becausethe number of molecules with energies > Ea increases
2. Lower the Ea by adding a CATALYST
Catalyst = substance that increases the reaction rate by providing a lower energy reaction “pathway”. The catalyst is not consumed as part of the reaction, although there can be chemical transformations during the reaction. At the end of the reaction the catalyst is regenerated.
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Homogeneous Catalyst
The catalyst and reactants are in the same phase.
KClO3(s) 2 KCl(s) + 3 O2(g)MnO2(s)
H - C - O - H (aq) H2O(l) + CO(g)H+ (aq)
O
Heterogeneous CatalystsThe catalyst and reactants are in different phases.
Platinum-rhodium gauze catalyst used in the production of HNO3
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4 NH3(g) + 5 O2(g) 4 NO(g) + 6 H2O(g)
2 NO(g) + O2(g) 2 NO2(g)
3 NO2(g) + H2O(l) 2 HNO3(aq) + NO(g)
Solid Pt/Rhcatalyst
Production of HNO3 Using a Heterogeneous Catalyst
Automobile Catalytic Converter
Catalyst = Pt-NiO, finely divided powder. Higher surface area provides more sites for adsorption and reaction
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The heterogeneous catalyst provides a surface where the reactants can be ADSORBED on an ACTIVE SITE -
3 H2(g) + N2(g) →2 NH3(g)
Fe
Industrial production of ammonia (Haber Process)-