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Topic: Kinetics Problem (SNS 2006/2007)  (Read 2520 times)

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Offline MrTeo

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Kinetics Problem (SNS 2006/2007)
« on: August 19, 2010, 11:58:57 AM »
The bonding mechanism of a ligand L to the site P goes through an intermediate stadium we'll call PL*:


Express the formation speed of PL using the kinetic constants of these reactions. What would change in the expression found if the reactions had comparable speeds?

≈•≈

This is my attempt to solve it:

Considering that the equilibrum is reached quite fast I think we can neglect the product consumption caused by the second reaction and approximate PL's formation speed as constant and equal to:



where k3 is the last reaction's kinetic constant (k1 and k2 are referred to the direct and inverse reaction of the equilibrium).
After solving the equilibrium expression (with [P]0≠0, [L]0≠0, [PL*]0≠0) I get:



If the reaction speed were comparable, then the expression for [PL] would have been one of the solutions of this differential equation system (as we should have also considered the amount of PL* consumed by the second reaction):



That's all folks ;D (I don't expect you to revise every passage, especially concerning the gigantic equilibrium expression, but maybe you could throw a glance at the equation system and confirm the ideas on which my answer is based)

Thanks in advance!
The way of the superior man may be compared to what takes place in traveling, when to go to a distance we must first traverse the space that is near, and in ascending a height, when we must begin from the lower ground. (Confucius)

Offline MrTeo

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Re: Kinetics Problem (SNS 2006/2007)
« Reply #1 on: August 22, 2010, 01:13:45 PM »
*Ignore me, I am impatient*... anyone out there? I just need a quick review of my work, c'mon!  ;D
The way of the superior man may be compared to what takes place in traveling, when to go to a distance we must first traverse the space that is near, and in ascending a height, when we must begin from the lower ground. (Confucius)

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