reaction kinetics
DESCRIPTION
Reaction kinetics. R1. The rate of reaction. Consider the following reaction. (R1). A and B are the reactants, C and D are the products,. the (greek) n - s are the stoichiometric coefficients. - PowerPoint PPT PresentationTRANSCRIPT
1
Reaction kinetics
2
A B C DA B C D
R1. The rate of reactionConsider the following reaction
A and B are the reactants, C and D are the products,
the (greek)-s are the stoichiometric coefficients.
For the definition of the rate of consumption for reactant and rate for formation for product we take the derivative of the number of moles with respect to time,
(R1)
dni/dt (amount of substance converted in unit time) decreases for reactants.
For reactants like
For products like
A simple reaction without parallel reactions and further (consecutive) reaction of the products has the form (S maybe product or reactant):
dtdn
v AA
dtdn
v CC
0Sii
i
According to this equation the stochiometic coefficients of reactants are defined negative, those of products are defined positive.
(R2a)
(R2b)
(R3)
4
dt
dn
Vi
i
1v
The quantities defined in (R2a) and (R2b)depend on volume, as well. Therefore in the definition of rate of reaction (v) we divide these type expressions both by volume and by the stoichiometric coefficient:
[mol dm-3 s-1]
The values of the stoichiometric coefficients influence the measure of the conversion.
Since the signs of dni/dt and are always the same, v is always positive.
(R4)
i
i
5
dt
dn
Vdt
dn
Vdt
dn
Vdt
dn
VD
D
C
C
B
B
A
A
1111
The rate of reaction can be expressed with the help of any component:
This expression is unambigous, as mentioned, if
- there is strict connection among the stoichiometric coefficients,
- there are no side or parallel reactions,
- the products do not react further.
(R5)
6
In case of parallel and consecutive reactions (see later) we can only define the concentration changes of the different components separately.
For parallel reactions (supposing volume V=constant)
C
BA
C
BA
dt
dn
dt
dn
dt
dn
dt
dn C
C
A
A
B
B
A
A 11
,11
For consecutive (further) reactions, supposing the volume as constant
dt
dn
dt
dn
dt
dn C
C
B
B
A
A 111
A B CA B C
In these cases a different rate of reaction is defined for each component.
(R6)
(R7)
7
The rate of reaction can be expressed with
a) amount of substance
b) concentration
c) extent of reaction
d) conversion
a) Amount of substance
dt
dn
VA
A
1v
The following formulas are all for reactant A (A is negative),
(R8)
8
b) Concentration A n
VA
dt
Ad
A
1
v
AdV
dnA
As it was already mentioned, v is positive because both A and d[A]/dt are negative (concentration of reactant decreases in time).
(R9)
9
c) Extent of reactionA
AA nn
0
dt
d
V
1v
The extent of reaction () is also defined as a positive quantity. Its unit is mol (both the numinator and the denominator are negative).
AAA nn 0
dt
d
dt
dnA
A dt
d
Vdt
dn
V A
AA
A
1v
(R10)
(R11)
10
d) Conversion wn n
nAA A
A
0
0
dt
dw
V
n A
A
A
0
v
The conversion of a reactant shows what fraction of that reactant has been converted (0wA1). If the reactants are not in stoichiometric ratio, the conversion is different for the different reactants.
AAAA wnnn 00
dt
dwn
dt
dn AA
A 0
(R12)
The change of reactant conversion (wA) is positive!
Remember the definition of v (R4)!
11
Akdt
Ad
R2. The concept of order of reaction
It has been found that the rate of most of the reactions depend on the concentrations of the reactants. Usually the rate can be expressed in a power equation:
k is called the rate constant, n is the order of reaction.
First order reaction: n=1;
E.g. decomposition of sulfuryl chloride:
SO2Cl2 →SO2 +Cl2
nAkdt
Ad Such kind equations express the
rate laws, they are rate equations
(R13)
(R14)
12
222222 ClSOk
dt
Cld
dt
SOd
dt
ClSOd
The order of reaction is not necessarily equal to the stoichiometric coefficient. E.g. the decomposition of nitrogen pentoxide:
2N2O5 →4NO2 +O2 is found to be a first order reaction.
Explanation: the reaction takes place in two steps:
N2O5 → N2O3 +O2 - slow
N2O3 + N2O5 → 4NO2 - fast
The first slow step determines the overall reaction rate.
(R15a)(R15b)
13
Consider the following reaction with two reactants:
AA + BB → Products
The following rate equation can be set up:
mn BAkdt
Ad
Note that the rate equation is not always normalized with the stoichiometric coefficient.
Here n is the order with respect to A, m is the order with respect to B and n+m is the overall reaction order.
The following rate equation shows a reaction which is first order with respect to A, first order with respect to B and second order overall.
BAkdt
Ad
(R16)
(R17)
14
Second order reaction with respect to one component: 2Ak
dtAd
E.g. the thermal decomposition of nitrogen dioxide:
2NO2 → 2NO + O2
The rate equation: 2
22 NOk
dt
NOd
Or if the rate is normalized with the stoichiometric coefficient:
22
2 2 NOkdt
NOd
(The value of the rate constant differs by a factor of 2.)
(R18)
15
The order of reaction is not always an integer. E.g. the decomposition of acetaldehyde:
CH3CHO → CH4 + CO
The rate equation: 23
33 CHOCHkdt
CHOCHd
In this case the order of reaction is 3/2.
The fraction value of the reaction order refers that the reaction proceeds in several steps or parallel reactions run.
16
The unit of rate constant depends on the order of reaction.
First order [k] = s-1
Second order [k] = dm3mol-1s-1
n order [k] = (time)-1(concentration)1-n
17
R3.Reaction molecularity and reaction mechanism
Many reactions proceed through a number of steps from initial reactants to final products. Each of the individual steps is called an elementary reaction.
The molecularity indicates how many molecules of reactants are involved in the elementary reaction.
Unimolecular e.g. SO2Cl2 → SO2 + Cl2Bimolecular e.g. NO + O3 → NO2 + O2
Trimolecular reactions are very rare.The molecularity is integer, 1, 2, (higher are very rare).
18
Reaction mechanism
On the one hand reaction mechanism means the sequence of elementary reactions that gives the overall chemical change. On the other hand reaction mechanism means the detailed analysis of how chemical bonds in the reactants rearrange to form the activated complex. An activated complex is an intermediate state that is formed during the conversion of reactants into products.
1. example: decomposition of ozone 2O3 → 3O2
The following rate equation was found experimentally
2
233
O
Ok
dt
Od
19
Mechanism:
1. Rapid decomposition of ozone to O2 and atomic oxygen → equilibrium.
2. The slow, rate determining step is the reaction of atomic oxygen with ozone.
1. O3 → O2 + O.
3
2
O
OOK
23
OOK
O
2. O. + O3 → 2O2
2
23
2323
O
OKkOOk
dt
Od
k
20
3. example: formation of hydrogen bromide from hydrogen and bromine
2. example: decomposition of N2O5 (see example below equation R18)
H2 + Br2 → 2HBr
This is not a simple bimolecular reaction but a chain reaction of radicals.
Chain initiation Br2 → 2Br.
Chain propagation Br.
+ H2 → HBr + H.
H.
+ Br2 → HBr + Br.
Chain inhibition H.
+ HBr → Br. +H2
Chain termination 2Br. → Br2
2a Brkv
2b HBrkv
2b BrHkv '
HBrHkv c
2d Brkv
21
The reaction is initiated by bromine radicals from the thermal dissociation of Br2.
The chain propagation steps regenerate the bromine radicals, ready for another cycle. In this step HBr is generated and also hydrogen radicals for the inhibition step.
The chain inhibition step removes the H radicals, slowing down the chain propagation.
22
Considering the mechanism desribed above, the following rate equation can be derived (no need to memorize):
Notice that [HBr] occurs in the denominator, so that the rate is inhibited by the [HBr] while [H2] (in the numinator) initiate the reaction.
(R19)
2
bc
21
2221
dab
Br
HBrkk1
BrHkkk2
dt
HBrd
'
/
/
/
23
R4. First order reactions In a first order reaction the rate is proportional to the concentration of the reactant.
A → B (+ C +…)
Examples:
SO2Cl2 → SO2 + Cl2
2N2O5 → 4NO2 +O2
The rate equation: Ak
dt
Bd
dt
Adv
where k is the rate constant, (its dimension is time-1.)
(R20)
24
Separate the variables and integrate from t = 0 (conc. = [A0]) to time t (conc. = [A]).
dtkA
Ad
tA
A
dtkA
Ad
00
tkAA 0lnln
tkA
A
0
ln tkAA 0lnln
tkeAA 0 tkAA 0lnln(R21a) (R21b)
25
The concentration of the reactant A decreases exponentially with time. The concentration of the product (B) if it is formed in stoichiometric ratio (one molecule of B is formed from one molecule of A):
tkeAAAB 100 (R22)
26
The concentrations as functions of time.
concentration
time
[A]0
[A]
[B]
27
Linear plot
ln[A]
time
ln[A]0
tg = -k
tkAA 0lnln
experimental data
(R21b)
28
If we plot ln[A] against time and the data points lie on a staight line (within experimental errors), the reaction is of first order. The slope of the line gives the rate constant.
Half life is the time required to reduce the concentration of reactant to half its initial value.
keAA
00
2 2
1 ke 2lnk
k
2ln In case of first order reaction
the half life is independent of initial concentration.
(R23)
29
R5. Second order reactions
We study two cases:
1. The rate equation is 2Akdt
Ad
This rate equation applies when
a) The reaction is second order with respect to one component.
E.g. 2NO2 → 2NO + O2
See example below equation R18!
(R24)
30
b) The reactants of a bimolecular reaction are in stoichiometric ratio.
A + B → Products but [A]0 = [B]0 so [A] = [B] at any time.
2AkBAkdt
Ad
We have the same rate equation in cases a) and b).
dtkA
Ad 2
We integrate from t = 0 (conc. = [A]0) to time t (conc. = [A]).
(R25)
31
(The integral of 1/[A]2 is -1/[A] +const.)
tkA
A
A
0][
1tk
AA
0][
1
][
1
tkAA
0][
1
][
1
The integrated form of the rate equation is 2Akdt
Ad
If we plot the reciprocal of the concentration of the reactant against time, we obtain a straight line in case of a second order reaction. The slope is the rate constant.
(R26)
32
Linear plot
1/[A]
time
1/[A]0
tg = k
experimental data
tkAA
0][
1
][
1
(R26)
33
The dimension of k is (concentration)-1 ·(time)-1,
Its unit is usually dm3/mol.s-1
Half life : [A] = [A]0/2
kAA 00 ][
1
][
2
kA 0][
1
0][
1
Ak
The half life of second order reactions depends on the initial concentration.
(R27)
34
Note: The stoichiometric equation for second orderreactions 2A Products is written sometimes in the form
22
1Ak
dt
Ad
Comparing this with the equation R25, the relation-ship between the two rate constants (it is the same reaction!):
k = 2k´.
35
2. The second order is the sum of two first orders (A + B Products) and the reactants are not in stoichiometric ratio.
BAkdt
Ad
It is difficult to solve this differential equation because both [A] and [B] are variables (but their changes are not independent).
The next 4 slides contain the derivation (Deriv1) of a complicate equation. It is not compusory to memorize it. However, the result is important.
dtk
BAAd
(R28a) (R28b)
36
Deriv1. Solution of the differential equation R28.
We introduce a variable x, which is the difference of [A]0 and [A]. Hence it is also the difference of [B]0 and [B].
x = [A]0 - [A], [A] = [A]0 - xx = [B]0 - [B], [B] = [B]0 - x
dtk
xBxA
Ad
00
The differential equation:
Since d[A] = -dx,
dtkdxxBxA
00
1
37
To alter the left hand side consider the following identity:
ba
ab
ba
11
baabba
11
)(
11
If we substitute [A]0-x for a and [B]0-x for b, the differential equation takes the form
dtkdxxBxAAB
0000
111
dtkABxB
dx
xA
dx
00
00
38
We integrate from 0 to t and from 0 to x. The two terms of the left hand side can be integrated separately.
xA
AxA
xA
dx xx
0
000
0 0
lnln
xB
BxB
xB
dx xx
0
000
0 0
lnln
The integral of the right hand side
tkABdtkABt
00
0
00
39
So the solution of the differential equation
tkAB
xB
B
xA
A
000
0
0
0 lnln
Rearrange this equation considering that [A]0-x =[A] and [B]0-x =[B]
tk
AB
AB
AB
0
0
00
ln][
1
If we multiply both the first and the second factor of the left hand side by -1, we get to the final form.
40
tk
BA
BA
BA
0
0
00
ln][
1
We can rearrange this equation to make is suitable for a linear plot
tkBA
BA
BA
000
0 ][ln
tkBAA
B
B
A 00
0
0 ][lnln
tkBAB
A
B
A 00
0
0 ][lnln
(R29)
(R30)
41time
experimental data
BA
ln
0
0lnB
A
kBAtg 00][
Plot ln([A]/[B]) as a function of time
42
R6. Determination of reaction order and rate constant
If a reaction of unknown kinetic parameters is studied, the primary experimental data are concentrations as function of time.
1. Integral methods. We assume an order of reaction (1 or 2) and check if the experimental data fulfil the corresponding rate equation.
43
First order
ln[A]
time
tkAA 0lnln
If the experimental data sit on this like straight line, the reaction is of first order.
(R21b)
44
First order
ln[A]
time
tkAA 0lnln
If the experimental data do not sit on the R21b like straight line, the reaction is not of first order.
(R21b)
45
Second order
1/[A]
time
tkAA
0][
1
][
1
If the experimental data sit on a this kind straight line, the reaction is of second order.
(R26)
46
Second order
1/[A]
time
tkAA
0][
1
][
1
In this case the experimental data do not sit on a straight line, the reaction is not of second order.
(R26)
47
The integral method can be used e.g. for deciding if the reaction is of first order or second order. The linear plot also produces the rate constant.
In more complicated cases (when the rate depends on more than one concentration or the order of the reaction is not an integer) the integral method cannot be used.
2. Differential methods. From the concentration - time data we determine the reaction rates by graphical or numerical derivation.
48
The concentration of a reactant as a function of time.
concentration
time
[A]
tgdtAd
v
[A]0
t
(R31)
49
Experimentally we obtain reaction rates at different concentrations.
Consider the following general equation.
AA + BB Products
The rate equation
mBnAkdt
Bd
dt
Ad
BA
11
v
How to simplify this expression?
(R32)
50
a)We want to determine n (the order with respect to A). We apply B in great excess so that its concentration can be regarded as constant :
[B] ~ [B]0
nAkmBnAk ,0v
In this case the rate equation has only two constants (k´ and n) to be determined. If we want to determine m, we apply A in great excess
mBkk 0, where
(R33)
(R34)
51
b) If we want to determine n+m (the overall order of reaction), we start the reaction with stoichiometric ratio of A and B. The stoichiometric ratio of reactants holds during reaction.
AAA
B
A
B
BB 00
where
mnAkm
AnAkmBnAkA
B
,v
So the rate equation is
mkk
A
B
,
(R35)
(R36a)
(R36b)
52
In both cases (namely a and b) we could simplify the rate equation so that it has two constants (namely a rate constant and an exponent, n or n+m).
nAk v
Experimentally concentration – reaction rate data pairs are obtained. Take the logarithm of this expression.
Alnnklnln v
If we plot ln v against ln[A], the points are on a straight line, if our model is close to real case. The intercept is ln k, and the slope is n.
(R37)
(R38)
53ln[A]
experimental data
ntg
lnv as a function of ln[A]
ln v
ln k
54
3.The method of initial rates. In some cases the products or one of the products influence the flow of the reaction.
a) Equilibrium reactions. The apparent rate is the difference of the rate of forward and backward reaction.
v = vf - vb
The kinetic parameters of the forward reaction can be determined when the rate of the backward reaction is negligible, i.e. at the very beginning of the reaction.
b) Autocatalytic reactions. One of the products acts as a catalyst (see later)
(R39)
55
The concentration of a reactant as a function of time.
time
tgdtAd
vt
00
[A]
[A]0
56
The initial rates are determined at various [A]0
concentrations. The kinetic parameters are calculated from [A]0 – v0 data pairs.
,v nAk If the form of the kinetic equation is
nAk 00v it is valid for the initial rates, too:
We change the initial contentration Ao and plot ln v0 against ln[A]0, the points are on a straight line. The intercept is lnk, and the slope is n. The initial reaction velocity is determined measuring the concentration during the initial part of the reaction.
(R40a)
(R40b)
57
E.g. with two reactants
The method of initial rates can be used for determining the order with respect to one component. In each measurement the concentrations of all the other reactants are kept constant (so that they can be merged into the rate constant) and only the concentration of the selected reactant (A) is varied (see equation R41).
nAkmBnAk 0,
00v
Because [B]0 is the same in all cases. So if lnv is plotted against ln[A]0 the result is a straight line, the intercept is lnk’, the slope is n.
(R41)
58
In many reactions the equilibrium is practically on the product side, the reaction „goes to completion”.
R7. Opposing reactions
In other cases a considerable concentration of reactants remain when equilibrium is reached (e.g. hydrolysis of esters). The reaction rate slows down as we approach equilibrium. In such cases two opposing reactions have to be taken into consideration.
The simplest model is the following (e.g. isomerization), k1 and k2 are first order rate constants
A Bk1
k2
(R42)
59
The rate equation
BkAkdt
Ad21v
At equilibrium v = 0, k1·[A]e = k2·[B]e ,where [A]e and [B]e are the equilibrium concentrations of A and B, respectively.The equilibrium constant in terms of concentrations:
2
1Kk
k
A
B
e
e
So the equilibrium constant is equal to the ratio of rate constants of the forward (k1) and backward (k2) reactions, respectively.
(R43)
(R44)
(R45)
60
If we measure the equilibrium concentrations, the ratio of k1 and k2 can be determined.
We need another relationship if we want to determine k1 and k2. This comes from the solution of the kinetic equation BkAk
dt
Ad21
Deriv 2
To reduce the number of variables, we make use of the fact that the sum of concentrations is always [A]0. (The number of molecules does not change during reaction.) [B] = [A]0 - [A], [B]e = [A]0 - [A]e
(R46)
(R47)
61
Before integration we change the last term (k2·[A]0).
AAkAkdt
Ad 021
0221 AkAkkdt
Ad
e
e
e
e
A
AA
A
B
k
k 0
2
1 ee AkAkAk 1202
eAkkAk 2102
eAkkAkkdt
Ad 2121
62
We integrate this differential equation from [A]0 to [A] and from 0 to t
eAAkkdt
Ad 21
dtkk
AA
Ad
e
21
tA
A e
dtkkAA
Ad
0
21
0
63
[A] → [A] - [ A]e
tkk
AA
AA
e
e
210
ln
This formula is similar to the equation for a simple first order reaction:
tkA
A
0
ln
The solution is the following.
[A]0 → [A]0 - [ A]e[A]0 → [A]0 - [ A]e
k → k1 +k2
(R48)
See (R21)
,
and
are the substitutions.
64
ln([A]-[A]e)
time
tg = -(k1+k2)
experimental data
We can determine k1+k2 if we plot ln([A]-[A]0) against time.
ln([A]0-[A]e)
65
The concentrations as functions of time when K =2 (R45). (Note that the sum of concentrations is always [A]0):
concentration
time
[A]0
[A]
[B]
66
Sometimes a substance can react more than one way.
R8. Parallel reactions
Bk1
E.g. C2H5OH C2H4 + H2O (dehydratation)
C2H5OH CH3CHO + H2 (dehydrogenation)
The simplest model
CA k2
where both k1 and k2 are first order rate constants.
67
The change of concentrations in time:
AkkAkAkdtAd 2121
AkdtBd 1
AkdtCd 2
The solution of equation (R49) is identical to the rate equation of a simple first order reaction (R28), the only difference being that the rate constant is the sum of k1 and k2.
(R49)
(R50)
(R51)
68
dtkkA
Ad 21
tA
A
dtkkA
Ad
0
21
0
tkkAA 210lnln
tkkeAA
210
ln[A] is a linear function of time. (k1+k2) can be determined from the slope.
Time dependence of the concentration of A
(R52)
69
Linear plot
ln[A]
time
ln[A]0
tg = -(k1+k2)
tkkAA 210lnln
experimental data
70
We have to find another relationship in order to determine k1 and k2 separately. Divide equation (R50) by equation (R51).
2
1
k
k
Cd
Bd
2
1
k
k
C
B
So the ratio of k1 and k2 is equal to the ratio of the two concentrations.
Time dependence of concentrations of B and C
The sum of concentrations is always [A]0. (The number of molecules does not change during this reaction.)
[A]0 = [A] + [B] + [C]
(R53)
(R54)
71
Using equation (R52)
tkk
eAAACB 2100 1
If we want the time dependence of [B], eliminate [C] using equation (R53).
1
2
k
kBC
tkk
eAk
kB 21
01
2 11
tkk
eAk
kkB
k
kB 21
01
21
1
2 11
72
By similar consideration the time dependence of [C]
tkk
eAkk
kB 21
021
1 1
tkk
eAkk
kC 21
021
2 1
Results:
(R55)
(R56)
The sum of the three concentrations (see R52, R55 and R56) is equal to the initial concentration of A according to R54.
73
The concentrations as functions of time when k2=2k1. (Note that the sum of concentrations is always [A]0.)
concentration
time
[A]0
[A]
[B]
[C]
74
The product of one reaction becomes the reactant in the following reaction.
R9. Consecutive reactions
The simplest model
A B C k1 k2
where k1 and k2 are first order rate constants.
76
Substituting the right hand side of this expression for [A] into equation R57b we have
Bktk
eAkdt
Bd 2
101
The solution of this differential equation gives the time dependence of [B].
The general solution
Rearranging equation R59 into a standard form:
(R59)
tkeAkBk
dt
Bd 1012
(R60)
77
(R61)
In accordance with the general solution of this type differencial equations (c is a constant):
tk
etk
e.cB 21
At zero time [B]=0. With this initial condition
12
10 kk
kAc
Substituting this result for equation R61, the time dependence of concentration [B] is
78
tke
tke
kk
AkB 21
12
01
The concentration of A decreases exponentionally. [B] reaches a maximum, then decreases gradually to zero. [C] at first slowly increases, then goes through an inflection and eventually approaches [A]0. Since
(R62)
12
tk2
tk1
0 kk
ekek1AC
12
(R63)
[C] = [A]0 - [A] - [B]
We have
79
The concentrations as functions of time.
concentration
time
[A]0
[A]
[B]
[C]
tm
80
How to find the maximum of the [B] – t curve (when [B] is the highests) ?
At the maximum the first derivative of the [B] – t curve is zero.
tke
tke
kk
AkB 21
12
01
02
21
112
01
mm tkek
tkek
kk
Ak
dt
Bd
where tm is the time at the maximum of [B]. Since the first factor is not zero, the second factor must be zero.
81
Take the logarithm of both sides:
mm tkek
tkek
22
11
mm tkktkk 2211 lnln
1212 lnln kkkktm
12
1
2ln
kk
kk
tm
Consequently
(R64)
82
R10. Temperature dependence of reaction rates
We shall deal with several types of temperature dependence of reactions.
A) The rate of most of the reactions increases exponentially with temperature. The reason is that with increasing temperature more and more molecules reach the excess energy which is needed for the reaction. These types of reactions are called thermally activated reactions.
83
The reaction rate as a function of temperature for thermally activated reactions
Temperature
Reaction rate (v)
84
Reaction rate (v)
Temperature
B) Explosions. At a certain temperature the rate increases by many orders of magnitude.
The background of an explosion is very often a chain reaction with chain branching That mains, the number of the chain centers grows exponentially: autocatalysis. If there exists a reaction that catches the chain center radical, then the reaction brakes up, terminates (see Example 3, HBr reaction, chapter R3).
Such a reaction is the gas phase oxydation of hydrogen to water:
gOHOgH 222 22
Initiation:
Propagation:
Branching:
Termination:
HOHHO 2
HHH 2
OHHOHH 22
HOOHO2
22
1HwallH
MHOMOH 22
M: other molecule
222 OOHHOOH
The branching step produces more than one chain carrier radicals. At higher temperature the radicals react before reaching the wall, consequently, the branching rate is higher than 1.
The M molecule in the termination step removes the excess energy.
The thermal explosion is a very rapid reaction. At very high temperature the reaction rate increases rapidly with temperature, namely, the high pressure means at these temperatures high carrier concentration and rapid radical recombination.
88Temperature
C) Enzyme reactions. (Enzymes are biocatalysts). At higher temperatures the enzyme looses its catalytic activity.
Reaction rate (v)
89
v
Temperature
D) The rate of some reactions does not depend or just slightly depends on temperature.
E.g. Photochemical reactionsRadioactive decayReactions of radicals
90
The rate constant of a thermally activated reaction can be expressed as
TRaE
eAk Arrhenius equation (R66)
Ea [J/mol]: activation energyA: preexponential factor (its dimension is identical to that of k).
TRE
Alnkln a
Take the logarithm of both sides:
If we plot lnk against 1/T, we obtain a straight line. The activation energy can be determined from the slope:
(R67)
91
lnk-1/T function
lnk
1/T
lnA
tg = -Ea/R
experimental data
92
The activation energy can be determined if we know the rate constants at two different temperatures (k1 at T1 and k2 at T2).
11 lnln
TR
EAk a
22 lnln
TR
EAk a
1212
11lnln
TTR
Ekk a
21
12
1
2lnTT
TT
R
E
k
k a
If four of the five parameters (T1, T2, k1, k2, Ea) are known, the fifth can be calculated using this formula.
and
So
and (R68)
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The interpretation of activation energy. The example is an exothermic reaction
Reaction path
Energy
baE
faE
U
: activation energy of the
forward reaction
faE
: activation energy of the
backward reaction
baE
U: heat of reaction (at constant volume)
94
It can be seen that molecules must attain a certain critical energy Ea before they can react.
U (≈H) is the difference between the activation energy Ea
f of the forward reaction and the activation energy Ea
b of the backward reaction.
The reaction energy is
ba
fa EEU (R69)
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A catalyst has three important properties:1. It changes (increases) the rate of reaction.2. It does not appear in the final product.3. It does not change the position of equlibrium.
R11.Homogeneous catalysis
Consequence: Since the catalyst changes the rate of reaction but not the equilibrium point, it must accelerate the forward (f) and backward (b, reverse) reaction by the same factor.
E.g. a dehydrogenation catalyst is also a good hydrogenation catalyst.
This is a simple chemical reaction: A+BC+D
Its equlibrium constant is with concentrations
BA
DCK c
The reaction rates are:
for the forward reaction BAkv ff
for the backward reaction DCkv bb
Dividing the two reaction rate expressions:
b
fc k
kK (R70)
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The catalyst usually provides an alternative reaction path having a lower activation energy than the uncatalyzed reaction.
Reaction path
Energy
baE
faE
U
aEThe new reaction path lowers the activation energies of both forward and backword reactions by the same amount Ea.
98
A catalyst works by first entering into a reaction with the reactant to form an intermediate complex.
The complex then either decomposes directly to the product or reacts with a second reactant to yield the product.
A + C → (AC) → Product + C
or A + C → (AC) (AC) + B → Product + C
where C is the catalyst (AC) is the intermediate complex
The figure introduces the work of a Ru containing catalyst helping oxidation (and reduction).
100
Examples in gas phase
1. Dehydratation of tertiary butanol
(CH3)3COH → (CH3)2C=CH2 + H2O
Without a catalyst this reaction is very slow below 700 K. With the addition of small amount of HBr rapid decomposition occurs at 500 K. The catalysed reaction takes place in two steps.
(CH3)3COH + HBr→ (CH3)3CBr + H2O (CH3)3CBr → (CH3)2C=CH2 + HBr
A C AC
AC CAC CProduct
101
2. Decomposition of aldehydes and ethers.
E.g. CH3CHO →CH4 +CO
In the presence of small amount of iodine the rate of this reaction increases by two order of magnitudes. The mechanism of the catalysed reaction:
CH3CHO + I2 → CH3I + HI + CO
CH3I + HI → CH4 + I2
A C AC
AC B Product
C
C2H5-O-C2H5 CH3-CH=O+C2H6→
102
Examples in liquid phase
1. Acid catalysis. The first step is the transfer of proton to the substrate BH + X → B- + HX+ . In the second step HX+ reacts further.
E. g. hydrolysis of esters, keto-enol tautomerism, inversion of sucrose
Example: hydrolysis of esters, our ester is ethyl acetate.
The reaction is detailed below.
Example: hydrolysis of esters, our ester is ethyl acetate (the reaction is detailed below).
First step, the catalyst, the hydroxonium ion builds an intermediate (transition) complex:
Mesomeric stuctures
Water addition
Proton transfer:
Ethanol is lost from the ion:
At last the catalyst, the hydroxonium ion is received:
Similar acid catalyses are for example the keto-enol tautomerism, the inversion of sucrose.
2. Base catalysis starts with the transfer of proton from substrate to catalyst:
XH + B → X- + BH+ , then X- reacts.
E. g.Isomerization and halogenation of organic compounds:
HBrArBrHBrArBrArH
22
107
R12.Kinetics of heterogeneous reactions
In a heterogeneous reaction at least one of the reactants or products is in a different phase from the other components. Typical heterogeneous reactions: Reaction of metals with acidsOxidation of solids with gaseous oxygenDecomposition of solids or liquids to gaseous productsElectrode reactions(see ppt file Electrochemical rate processes )Contact catalysis.
108
Most heterogeneous reactions take place on a solid-gas or a solid-liquid phase boundary.
A surface reaction can usually be divided in the following elementary steps:
1. Diffusion of reactants to surface 2. Adsorption of reactants at surface 3. Chemical reaction on the surface 4. Desorption of products from the surface 5. Diffusion of products away from the surface
The slowest step determines the overall reaction rate.
109
The rate of reaction is defined in a different way from the homogeneous reactions. Since the reaction takes place on the surface and not in the bulk solution, the rate is related to unit surface and not unit volume.
If A is a reactant,
dt
dn
AA
s
1
v
sm
mol2
where As is the surface area.
(R71)
110
R13. Contact catalysis
Many reactions that are slow in a homogeneous gas or liquid phase proceed rapidly if a catalytic solid surface is available.In parallel reactions different surfaces can accelerate different parallel paths (selectivity).
The kinetics of surface reactions can be treated succesfully on the basis of the following assumptions:
111
a) The rate determining step is a reaction of adsorbed molecules (step 3, elementary steps, chapter R12).b) The reaction rate per unit surface area is proportional tothe fraction of surface covered by reactant. This depends on pressure (for gases) or on concentration (for liquid solutions).
The pressure dependence of can be described by the Langmuir equation.
112
Langmuir adsorption isotherm
The adsorption isotherm is (in general) an expression that gives at constant temperature as a function of pressure (or concentration).
One of the quantitative theories is given by Langmuir. He based his theory on the following assumptions:a) is the fraction of sites occupied by adsorbed molecules and (1-) is the fraction of sites not occupied.
b) Each site can hold only one adsorbed molecule
c) The energy of adsorption is the same for all sites and does not depend on the fraction covered, .
113
Derivation of the adsorption isotherm
The rate of the surface processes is the change of the suface fraction in unit time for and unit particle density. The rate of adsorption is proportional to the gas pressure and the fraction of bare surface (1-).
1pkv aads
The rate of desorption from the surface is proportional to the fraction of covered surface .
ddes kv
(R72)
(R73)
At equilibrium
vads = vdes
da kpk 1
That means
The equilibrium constant is
1pk
kK
d
a
This equilibrium constant depends on the pressure, so it is not then true equlibrium constant according to its thermodynamical definition.
(R74)
(R76)
(R75)
115
The final forms are
pK
pK
pkk
pkk
pkk
pk
d
a
d
a
ad
a
11
pK
p
1 or 1
pK
11
is a linear function of p at very low pressures while it approaches 1 at high pressures.
1/ is a linear function of 1/p:
Using R75 and R76
(R77)
(R78a) (R78b)
116
tg=1/K
p
1
1/p
1
These figures demontrate equations R78a and R78b, respectively.
117
The simplest surface reaction is when one compound reacts on the surface (E.g. isomerization or decomposition).
It is assumed that the rate of reaction is proportional to the fraction of covered surface . We apply R78b:
pK
pkk
1v
where k is the rate constant [mol/m2s]
pkKk
111
v
1
Plotting 1/v against 1/p gives a linear function
(R79a)
(R79b)
118
tg=1/(k·K)
v
1/p
1/k
Plot for equation R79b
pkKk
111
v
1