chapter 12 environmental chemical reactions and ... 4 kinetics... · web viewenvironmental chemical...
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Environmental Chemical Reactions and Kinetics
1.kinetics order of a reaction Arrhnenius temperature -rate const rate limiting steps steady-state approximation Hammett relationships and rate constants kinetic simulations
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Kinetics: the rate law of a reaction must be verified by experimentation
1st order reactions
A ---> B
-d [A] /dt = krate [A]
- d [A]/[A] = kratedt
[A]t= [A]0 e-kt
typically to get a 1st order fit, 70% of A needs to react ifthe rate constant is independent of concentration
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Some time vs conc. data
Hr Conc [A] Ln[A]0 2.718 1
0.3 2.117 0.750.6 1.649 0.500.9 1.284 0.251.2 1.000 0.001.5 0.779 -0.25
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t1/2 = time it takes for [A] to decrease by a factor of 2
ln [A]/[A]o=-k t1/2 ; ln2 /k =t1/2
life times are define slightly differentlyln e = k
1/k =
1/k = time scale for the reaction
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Pseudo first order rate constants
A. The reaction of benzyl chloride to produce benzyl alcohol water reacts with benzyl chloride
d[benz-Cl]/dt= -k [benz-Cl] [H2O]k here is a second order rate const. in L mol-1sec-1
If we assume that the reaction is run in dilute solutions as we could say that the [H2O] is constant
kpseudo = k[H2O]
d[benz-Cl]/dt= -kpseudo [benz-Cl]
B. Consider the reaction of methyl mercaptan in water to produce dimethyl disulfide
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2CH3 SH + ½ O2 ----> H3 C-S-S-CH3
d[CH3 SH]/dt = k [CH3 SH]2 [O2]1/2
if we assume that O2 is constant
d[CH3 SH]/dt = kpseudo [CH3 SH]2
For the special case of [A] reacting with [A]
A + A products
Since A is reacting with A
and
for this type of simple second order reaction, plot of 1/[A]t
vs. t gives a straight line with a slope of...??? and an intercept of....?
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the half-life is when [A]t = ½ [A]o
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More on second order reactions
if A + B----> productsand x is the amount of A and B reacted
the differential equation that describes a second order rate law for the change in x with respect to time
dx/dt = - k[A] [B]or
dx/dt = - k [Ao-x] [Bo-x]
this has an exact solution
so if we measure the amount reacted, x, over time and plot the left side of the equation vs time, the rate constant, k can be measured
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Time (hh.hh)
-pinene (ppm)
O3 (ppm)
9.15 0.820 0.600 9.23 0.406 0.435 9.50 0.158 0.223 9.83 0.097 0.149
????
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Rate Constants and Temperature
1850 - Wilhelmy related rate constant to temperature
1862 - Bertholet proposed k = A eDT
1889 - Arrhenius showed that the rate constant increases exponentially with 1/temp.
1884 - van’t Hoff Equation
where Kc= “concentration equilibrium constant”U = ‘standard internal energy changeand
Kc = k1/k-1
so
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van’t Hoff proposed two energy factors, so that
U = E1 - E-1
It follows that: ln k1 = - E1/RT +const
or k1 = A e-E1 /RT (Arrhenius Equation)
There are other equations relating temp and rate constants
1898 van’t Hoff rate equation usually give very good empirical fits
The Arrhenius equation is most widely used because it provides insight into how reactions proceed
k1 = A e-Ea/RT ln k1 = ln A - Ea/RT
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krate (Ti/T2) = eEa (1/T2-1/T1)/R
krate relative to 25oC x 100 (%)EaKJ/mol
10oC 20oC 30oC Avg increase in krate
40 42 76 130 1.850 34 71 139 2.060 28 43 149 2.3
Theory of Arrhenius
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Consider the reaction of B +C ---> D + E
dB/dt = -k [B] [C]
to react B and C have to collide, and the rate should depend
1. on the frequency of encounters of B and C which is proportional to the conc. of B and C and how fast B and C move (diffuse) toward each other.
2. the orientation of B and C
3. the fraction of the collisions that will have sufficient energy to break the bonds of B and C.
The fraction of reaction species with an energy greater than the activation energy is given by the Botlzmann distribution of energies
e-Ea/RT
hence in rate = A e-Ea/RT[B] [C]
the coef A must include frequency and orientation factors
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Activated Complex or transition state theory
the reaction of B + C ---> on its way to products goes though an activated intermediate called [BC]
B + C ---> [BC]‡--> [D] + [E]
it is assumed that there is an equilibrium between the reactants and the activated complex [B-C]
and that [B-C] decomposes to products with a rate constant of
kT/h
where k = Boltzmann const1.38 x10-23 J K-1
h= Plancks const, 1.63 x10-34 J/sec
k T/h assumes that the rate constant is directly proportional to the vibrating frequency of the transition state and the energy associated with this is proportional to kT
= kT/h
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[BC] ‡--> [D] + [E]
rate = kT/h [BC]‡
since we said
B + C --> <-- [B-C]‡
substituting for [BC]* in: rate = kT/h [BC]‡
rate = kT/h K‡ [B] [C]
The equilibrium const. is related to the free energy of activation by
K‡= e-G‡/RT
and G‡ = H‡-TS‡
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for a bimolecular reaction H‡ = Ea - RT
this looks like k= A e-Ea / RT
the entropy term in A --> orientation probability
and temp in A may be related to the frequency of encounters; # collisions ~ (RT)1/2
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Composite Reactions
Simultaneous Reactions
A--> Y
A---> Z
Competition reactions
A + B --> Y
A + C --> Z
Opposing Reactions
A + B Z
Consecutive reactions
A--> X--> Y-->Z
FeedbackA--> X--> Y---> Z
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Consecutive Reactions
k1 k2
A ---> X---> Z
-d[A]/dt = k1 [A] [A] = [A]o e-k1t
+d[X]/dt = k1[A]
d[X]/dt = +k1[A] - k2[X]
d[X]/dt = +k1[A]oe-k1t +- k2[X]
solution
[X] =[A]ok1/(k2-k1) (e-k1t- e-k2t)
[Z] =[A]o/(k2-k1) [k1(1-e-k1t) -k1(1- e-k2t)
These types of expressions are cumbersome
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(Steady- state approximation)
“The rate of change of the concentration of an intermediate, to a good approximation, can be set equal to zero whenever the intermediate is formed slowly and disappears rapidly” -D.L. Chapman and L.K. Underhill, 1913
Use of the Steady-State Assumption
(Consecutive Reactions with an Opposing Reaction as the 1st step)
Consider the reaction of OH radicals in the atmosphere with SO2 to form sulfuric acid particles.
k1
OH + SO2 HOSO2‡
k-1
k3
HOSO2‡ + M ---> HOSO2 + M
for the rate of formation of HOSO2‡, we would write
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d [HOSO2]‡/dt = +k1[OH][SO2]
for the loss we have-k-1[HOSO2] ‡
and-k3[HOSO2]‡
so the total rate expression is
d [HOSO2]‡/dt = +k1[OH][SO2]-k-1 [HOSO2]‡ -k3[HOSO2]‡
at steady state d[HOSO2]‡/dt = zero
0=+k1[OH][SO2] -k-1[HOSO2]‡ -k3[HOSO2] ‡
for the formation of product HOSO2
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HOSO2‡ + M ---> HOSO2 + M
d[HOSO2]/dt = +k3[HOSO2]‡
Substituting [HOSO2]‡
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In the atmosphere the formation of ozone can be represented as
hNO2 -------> NO + O. k1= 0.4xTSR
MO. + O2 ----> O3 k2 = fast,fast
O3 + NO -----> NO2 k3
a. derive a steady state relationship for O3 as a function of NO2, NO, k1 and k3; assume that dNO2/dt is at ss..
b. calculate the equilibrium ozone for the following conditions; assume k3 = 2.64310+03 exp(-1370/ T)
time 6:00 7:30 9:00 12:00 15:00
NO (ppm) 0.06 0.11 0.08 0.03 0.005NO2 (ppm) 0.03 0.07 0.14 0.15 0.10Temp (oC) 25 26 28 35 34TSR(cal cm-2min-1) 0.05 0.12 0.25 0.5 0.3*TSR= total solar radiation flux in cal /cm2/min
plot your results for NO, NO2, and O3 and if this was a real atmosphere explain.
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Rate determining steps
k1 k3
A + B X Z k-1
if k3 >> k1
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The Hammett Equation and rates constants
In 1940 Hammett recognized for substituted benzoic acids the effects of substituent groups on the dissociation of the acid group
COOH
R
COO-
R
+H+
Go= GoH + Go
i
Effect on the free energy change from dissociation could be represented as the sum of the free energy change by the unsubstituted benzoic acid and the contributions from the various R groups.
-RTln Ka = -RTln KaH - RTln Ka,i
Effect on the free energy change from dissociation could be represented as the sum of the free energy
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change by the unsubstituted benzoic acid and the contributions from the various R groups.
Hammett then says that the effects of the substituent group i, on the free energy can be represented as:Go
i = -2.303 RTi; where i =ln Ka,i
we know that
Go = -2.303 RT log Ka
and Go
H = -2.303 RT log KaH
Goi = -2.303 RTi
so-2.303 RT log Ka=-2.303 RT log KaH +-2.303 RTi
going back to:
-RTln Ka = -RTln Ka,H - RTln Ka,i
log Ka= log KaH +i
so, log (Ka / KaH )= I
and pKa = pKaH - I
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Hammet Constants
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Phenols and anilines
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Hammet also observes that when considering other compound classes, like phenyl acetic acids the values developed for benzoic acid can be used
log (Ka / KaH) = i
log (Ka / KaH )= i
when considering other compound classes, like phenyl acetic acids the values developed for benzoic acid can be used
log (Ka / KaH) = i
Figure 8.7 page 174
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Rate constants and Hammet sigmas
if an aromatic reaction is going through a transition state
B + C ---> [BC]‡--> [D] + [E]
we said that the rate
rate = (kT/h) K‡ [B] [C]
the rate constant is (kT/h) K‡
log krate= log (kT/h)+ log K‡
since -2.303 RT log K‡= G‡o
Using the Hammett argument that
G‡o= G‡oH + G‡o
i
show that log(krate) = log krateH + m,p
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or log(krate/krateH) = m,p
Different rates are obtained in different solvents, so reaction rates are not directly applicable to water if in another solvent
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