MRD:01512675

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Exercise 1: H + H_2 system

Question 1: On a potential energy surface diagram, how is the transition state mathematically defined? How can the transition state be identified, and how can it be distinguished from a local minimum of the potential energy surface?

The transition state is defined as the maximum point of the minimum energy path between the reactants and products. Therefore, on the potential energy surface diagram, it exists as a minimax; a saddle point. This can therefore be described as the point where the partial differential of the potential energy with respect to all variables is zero.

In this case, due to a 3 dimensional surface plot, we have \frac{\partial V}{\partial r_1} = \frac{\partial V}{\partial r_2} = 0 , where r_1 and r_2 are the respective distances between AB and BC.

The local minimum point would see that a deviation in any direction would be an increase in potential energy. An example of this is the position of the reactants or products on the PES.

However, the transition state would see a decrease in potential energy along the reaction coordinate, and an increase in the coordinate orthogonal to this. This can be seen if we visualise the PES.

A 2D viewpoint of the PES, with the x-axis being the AB distance, and the y-axis being V(r_1). We see an established potential well. This runs across the entire PES as a valley of potential well. In this viewpoint, the transition state is seen as a minimum point.
A 3D visualisation of the PES, showing how the transition state is a maximum. The black curve is the reaction path, and maximum of this curve is the saddle point transition state.

Due to the symmetry of this system, the transition state saddle point is observed at a point where r_1 = r_2, but this is not necessarily always the case. In some asymmetric systems, the transition state will depend on the relative energy of the products and reactants; this can be further described by Hammond's postulate.


The saddle point of any-dimensional curve can be identified by computing a Hessian matrix.

H_{x,y} = \begin{pmatrix} \frac{\partial^{2} V}{\partial x^{2}} & \frac{\partial^{2} V}{\partial x\partial y } \\ \frac{\partial^{2} V}{\partial x \partial y } & \frac{\partial^{2} V}{\partial y^{2} } \\ \end{pmatrix}

Upon finding the determinant (H). If H <0, it must be a saddle point, so to find the transition state, we just need to find the coordinates where this is the case.

Question 2:Report your best estimate of the transition state position (rts) and explain your reasoning illustrating it with a “Internuclear Distances vs Time” plot for a relevant trajectory.

Due to the symmetry between the H and the \chem{H_2} molecule, and the fact that the interaction is happening at 180º, we know that r_1 must equal r_2 for any point on the potential for the transition state.

If we were to further set the momenta to zero for all 3 particles on the transition state, we know that the internuclear distances between the atoms will not change. This must hold true, as all the derivatives of the potential are zero; there are no forces acting on the particles. As an equilibrium point, a plot of internuclear distances vs time will be constant for the transition state.

This was found for r_{12} = 90.775 pm. The internuclear distances vs time plot confirms this; it is shown below.

Internuclear dist v time 1.png

Contour plot trs1.png

Question 3: The Minimum Energy Path (MEP)

The MEP shows a clear difference in its plot and animation compared to the Dynamic calculation.

  1. There is no vibration/ oscillation in the MEP plot. This makes sense; it would be going against minimum energy route, as the oscillations would mean that the particle is not always at the minimum of the potential well.
  2. The MEP plot finishes once the minimum point of the energy potential surface is reached; after 193.1pm as the AB distance and 74 pm as the BC distance, the contour is consistent. However, we know that the particles must keep moving from this, as they carry opposite velocities. This is shown in the Dynamics plot, where the reaction path continues long after reaching the end of the x-label in the plot. This confirms that the MEP is relying only on the minimum of the potential energy surface; not the distances AB and BC.

This is shown in the comparison below.

It is also interesting to note the action of the MEP when we start from the reactants, as before, with enough energy to go to the products in the Dynamics. This is shown in the comparison below.

In this scenario, despite having enough initial velocity in one direction, the MEP doesn't follow that path. It reverses the direction of the initial velocity and instead ends up with no reaction taking place. This implies that it has followed the minimum energy path at every point in the plot, ignoring the vectors that the particle is following. This further exemplifies the difference between Dynamics and MEP, showing that MEP is only taking the mathematically logical route, whereas the Dynamics considers the physical process that is occuring.

Question 4: Reactive and Unreactive Trajectories

The following table assesses the plot for the initial positions r1 = 74 pm and r2 = 200 pm, with varying initial momenta.

p1/ g.mol-1.pm.fs-1 p2/ g.mol-1.pm.fs-1 Etot Reactive? Description of the dynamics Illustration of the trajectory
-2.56 -5.1 -414.280 Yes Proceeds as normal. No initial collision, but repulsion between the two systems is overcome, etc.
-3.1 -4.1 -420.077 No The initial velocity of the atom is far too slow to collide with the molecule. The two systems approach each other initially, but the repulsion between them forces them to move in opposite directions, and with more velocity than
-3.1 -5.1 -413.977 Yes The two systems approach the transition state, and then the diatom splits, with the central atom pairing with the other terminal atom. They then proceed to move in opposite velocities.
-5.1 -10.1 -357.277 No Initial velocity of particle C is so great that there is some repulsion between particle B and C, despite moving towards each other. As a result, particle B moves away from C after the initial attraction. It then oscillates around the transition state, moving from AB + C to A+ BC. It eventually settles with AB + C, the initial reactants. It can be seen by increasing the number of steps to 2000 that the final position of the two systems is greater separation. The particles AB and C are moving in opposite directions, so end up further apart than the initial conditions.
-5.1 -10.6 -349.477 Yes Oscillations around the transition state after an initial collision. This is very similar initially to the -10.1 p2 path. However, the rebound collision for A and B is even faster, resulting in another rebound for B. B then collides with particle C as they are both moving in the same directions, and the final state is that of the products, A + BC

Question 5: Transition State Theory Predictions

Transition state theory can be used to determine the rate of a reaction, but it relies on 5 assumptions:

  1. Once the kinetic energy has crossed the potential barrier, the reaction will proceed; there is no recrossing of the barrier.
  2. There are no quantum effects {specifically, no quantum tunnelling will take place}
  3. It is modelled on the Boltzmann distribution
  4. ask
  5. ask

Assumptions 1 and 2 are broken in these reaction dynamics, as we are considering classical collisions with some forces of attraction and repulsion between the atoms. As a result, despite the fact that crossing of the barrier can occur in a certain scenario, that activation barrier may be recrossed later. This is shown in the reaction pathway for the momenta p1 = -5.1 and p2 = -10.1, where despite the initial crossing of the barrier and consequent overcoming of the energy barrier, the system is not reactive. This therefore breaks from the mold of TST.

As TST suggests that some reactions that are not reactive are in fact reactive, it suggests that TST will overestimate how many reactions are successful. As a result, we can surmise that TST will overestimate the rate of reactions, compared to the GUI that we are using.

If the GUI agreed with assumption 1, TST would underestimate the reaction rate, as Tunnelling of the atoms would lead to a higher rate than the classical picture, as not all of the atoms have to reach the potential barrier to overcome it.

Exercise 2: F-H-H system

Question 1: Energetics and bond strength

Let's set the initial position as r_1 = r_2, where r_1 is F-H, and r_2 is H-H.

If we run a MEP plot from this position, the particle will end up at the lower energy state, regardless of the initial reactants or products.

We can see in the image below, the minimum energy path is such that r_1 is minimised, and r_2 is maximised. With r_1 as F-H, this implies that the lower energy state is H + H-F.

MEP F-H-H.png

As a result, we can classify the F + H2 --> H + HF reaction as exothermic, as it is progressing from a higher energy state to a lower energy state.

H + HF ---> F + H2 would therefore be an endothermic process; it would require an input of energy to get this product.

This order of potential energies suggests that the bond strength between F-H is greater than for H2.

Question 2: Transition state distance

As before, the transition state will be the saddle point on the surface plot. However, as the system is no longer symmetric as before, the transition state is no longer at the point where r_1 = r_2.

Hammond's postulate suggests that the transition state will be closer to the higher energy system in the reaction. We know that this is the case for F + H2, so the transition state must be such that the bond distance for F-H is greater than for H2.

Knowing this, we can surmise that if AB is F-H and BC is H2, the distances at the transition state are: AB =184 pm and BC = 74.4 pm. This complies with the logic that the reaction where FH is the product is exothermic, as this is supported by Hammond's postulate.

Transition state ex2 contour.pngTransition state ex2 surface.png

We can once again, further confirm that this is the saddle point by using the same point that the forces along AB and BC at this point are both zero.

Question 3: Activation energy

To find the activation energies of each product F-H and H2 (2 mutually exclusive scenarios), we simply need to find the difference between the transition state energy and the energy of the products. This can be calculated for the reaction only (excluding vibration) by using MEP to identify the shortest route.


Due to the asymmetry of the atoms, we have 2 activation energies.

Starting from the r_{ts}where AB =184 pm and BC = 74.4 pm, with a perturbation of ± 2 pm in the AB axis, and a step count of 2500, we get these MEP results.

Transition state to minimum.png Transition state to min en vs time.png

The plots above show the activation energy for the enothermic formation of the product F + H2 . The plots below show the activation energy for the exothermic formation of the products F-H + H.

Transition state to min 2.png

Product Energy of Transition State (kJmol^{-1}) Energy of product ΔE
F-H + H -433.991 -434.155 0.164
F + H2 -433.979 -556.895 122.916

This is because we know that the energy of the transition state is the maximum energy state on the reaction path, and doesn't consider oscillations along the potential well; so we can just use the MEP.

These results are consistent with our understanding of the system, and the contour plot; it is an extremely early TS for the exothermic formation of HF + H, so the activation energy for this reaction is extremely low compared to the reverse, endothermic process. This can be further shown by the contour plot; the difference in energy is shown to be almost negligible as it is along the same contour line.

Question 4: The release of Reaction Energy

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Question 5: Efficiency of reaction

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