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Kinetics – the speed (or rate) at which a reaction takes place 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g) 2 ways to measure the rate of any reaction 1. measure.

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Presentation on theme: "Kinetics – the speed (or rate) at which a reaction takes place 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g) 2 ways to measure the rate of any reaction 1. measure."— Presentation transcript:

1 kinetics – the speed (or rate) at which a reaction takes place 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g) 2 ways to measure the rate of any reaction 1. measure the Increase in [Products] over time 2. measure the Decrease in [Reactants] over time How do you measure this ? measure a change in concentration per change in time

2 slope = yxyx Rate =   [ ]   t slope = Rate

3 * By convention, all rates are reported as positive values Rate =   [ Products ]   t when   [ Products ]   t slope = + # when   [ Reactants ]   t slope = - # Rate = -   [ Reactants ]   t

4 instantaneous rate – rate of rxn at a particular instant of time

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6 initial rate – instantaneous rate at t = 0 (very beginning)

7 slope of tangent line at t = 0 is - 2.0 x 10 - 4 M/sec Rate = -   [H 2 O 2 ]   t = - ( - 2.0 x 10 - 4 M/sec) Rate = 2.0 x 10 - 4 M/sec 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g)

8 Can the rate of H 2 O 2 being consumed be related to the rate of products being generated ? 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g) [H 2 O] increases at a rate of 2.0 x 10 - 4 M/sec as [H 2 O 2 ] decreases at a rate of 2.0 x 10 - 4 M/sec [O 2 ] increases at a rate of 1.0 x 10 - 4 M/sec as [H 2 O 2 ] decreases at a rate of 2.0 x 10 - 4 M/sec What is the rate that O 2 forms when the [H 2 O 2 ] is decreasing at a rate of 2.0 x 10 - 4 M/sec ?

9 The rate of any rxn depends of four things: 1. physical state of the reactants (usually means surface area) 2. concentration of the reactants 3. temperature of the reactants 4. presence of a catalyst

10 Rate vs. [Reactants] 2 H 2 O 2 (aq) 2 H 2 O ( ) + O 2 (g) rate = k [H 2 O 2 ] x rate law expression takes the form: rate = rate of the reaction k = rate constant [H 2 O 2 ] = concentration of reactant x = order of the reactant (usually an integer)

11 what if the rxn has multiple reactants ? 2 HgCl 2 + C 2 O 4 2 - Hg 2 Cl 2 + 2 CO 2 + 2 Cl - Rate = k [HgCl 2 ] x [C 2 O 4 2 - ] y k = rate constant indicative of this rxn x = order wrt [HgCl 2 ] y = order wrt [C 2 O 4 2 - ] x and y must be determined experimentally

12 Trial[HgCl 2 ][C 2 O 4 2- ]initial rate, M/sec 10.10 M0.30 M 7.65 x 10 - 5 20.20 M0.30 M 1.53 x 10 - 4 30.20 M0.10 M1.70 x 10 - 5 - to determine the numerical value for x and y, examine the data and find 2 trials where [reactant] of interest is varied, while all other reactants are held constant. Compare rate law expressions for these two trials to determine the order of that reactant Method of Initial Rates

13 Trial[HgCl 2 ][C 2 O 4 2- ]initial rate, M/sec 10.10 M0.30 M 7.65 x 10 - 5 20.20 M0.30 M 1.53 x 10 - 4 30.20 M0.10 M1.70 x 10 - 5 Use trials 1 and 2 to obtain the numerical value for the order wrt [HgCl 2 ] (which is x) examine trials 1 and 2 [HgCl 2 ] varies while the [C 2 O 4 2 - ] is held constant Rate = k [HgCl 2 ] x [C 2 O 4 2 - ] y x = 1 unitless

14 Trial[HgCl 2 ][C 2 O 4 2- ]initial rate, M/sec 10.10 M0.30 M 7.65 x 10 - 5 20.20 M0.30 M 1.53 x 10 - 4 30.20 M0.10 M1.70 x 10 - 5 Use trials 2 and 3 to obtain the numerical value for the order wrt [C 2 O 4 2 - ] (which is y) examine trials 2 and 3 Rate = k [HgCl 2 ] x [C 2 O 4 2 - ] y [C 2 O 4 2 - ] varies while the [HgCl 2 ] is held constant y = 2 unitless

15 Rate = k [HgCl 2 ] x [C 2 O 4 2 - ] y x = 1 y = 2 Rate = k [HgCl 2 ] 1 [C 2 O 4 2 - ] 2 x and y do NOT vary under any circumstances ! or Rate = k [HgCl 2 ] [C 2 O 4 2 - ] 2 rxn is 1 st order wrt HgCl 2 rxn is 2 nd order wrt C 2 O 4 2 -

16 Rate = k [HgCl 2 ] [C 2 O 4 2 - ] 2 Determine the numerical value for the rate constant, k = k Rate [HgCl 2 ] [C 2 O 4 2 - ] 2 1 M 2 ·sec 8.5 x 10 - 3 k = k is constant and does NOT vary with [ ] units are very important k does vary with temperature

17 rate constant,

18 overall reaction order – sum of the individual reaction orders x + y = 1 + 2 =3 reaction is overall 3 rd order

19 [ ] vs. time Δ aAaAbB + jJ if Rate = k[A] 1 rxn is overall 1 st order ln [A] o [A] t = kt [A] o = initial [A] at t = 0 [A] t = [A] at some time later, t k = rate constant t = time from t = 0

20 SO 2 Cl 2 decomposes as follows: SO 2 Cl 2 SO 2 + Cl 2 The rate constant, k = 2.2 x 10 - 5 at 300  C. Suppose 0.30 M SO 2 Cl 2 is placed in a container at 300  C and allowed to decompose. What is the [SO 2 Cl 2 ] after 75 minutes ? 1 sec whenever the rate constant, k has units of 1/time ( or time - 1 ), the reaction is overall 1 st order ! 1 t

21 half-life – time required to convert exactly ½ reactants into products abb. for half-life is t 1/2 for rxn is overall 1 st order t 1/2 = 0.693 k

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24 Prozac is a prescription drug which is metabolically eliminated from the body by overall first order kinetics. Prozac has a body clearance half-life of 1.835 x 10 5 sec. If a patient is given a 20.0 mg dose, how many hours until only 13.8 mg Prozac remains in the body ?

25 [ ] vs. time Δ aAaAuU + kK if Rate = k[A] 2 rxn is overall 2 nd order 1 [A] t = kt 1 [A] o t 1/2 = 1 k [A] o

26 ln [ ] vs. time is linear [ ] vs. time is NOT linear only occurs when the rxn is overall 1 st order slope = - k CH 3 NC CH 3 CN

27 NO 2 NO + ½ O 2 This rxn is NOT 1 st order only occurs when the rxn is overall 2 nd order vs. time is linear 1 [ ] slope = k

28 Temperature vs. Rate An increase in temperature results in an increase in the rate of a reaction collision theory – for a reaction to occur, reacting species must first collide 1. collision must possess enough energy to react 2. collision must have reactants in the proper orientation to react

29 activation energy – the minimum energy reactants must attain to react to form products EaEa ΔHΔH Reactants Products

30 how is activation energy, E a, determined ? In lab, keep [reactants] constant and vary the temperature. Calculate values of the rate constant, k at each temperature. Svante Arrhenius 1859 – 1927

31 Arrhenius equation k = (A) (e (−E a /RT) ) y = mx + b ln k = + ln A - E a RT take ln of both sides slope = - Ea R a plot of ln k vs. gives a straight line 1T1T

32 1T1T K -1 slope = - 19,000 K ln k vs. 1T1T K -1

33 slope = -EaR-EaR E a = - (slope) (R) slope = - 19,000 K E a = - ( - 19,000 K) (8.314 J/mole·K) E a = 157,966 J/mole E a = 158 kJ/mole E a must be positive

34 Arrhenius equation (again) = ln k1k2k1k2 1T11T1 1T21T2 EaREaR Trialk, 1/M·secTemp 1 8.38 x 10 - 4 400  C 27.65 x 10 - 2 500  C 2 HI H 2 + I 2 given the data above, determine the E a of the rxn

35 catalysts – increase the rate of rxn without being consumed 1. decrease the E a by providing a different pathway to products 2. provide the correct orientation for the reactants to react

36 uncatalyzed rxncatalyzed rxn

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38 correct orientation Fritz Haber 1868 – 1934 Karl Bosch 1874 – 1940 N 2 + 3 H 2 2 NH 3 Haber-Bosch process

39 catalyst is primarily Fe & Fe 2 O 3 H 2 and N 2 continuously added NH 3 has no affinity to absorb on surface H 2 and N 2 adsorb on the surface of the iron 3 H and N react on surface of the iron

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