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We are back here for some more stimulating discussion of
chemistry. And I want to begin today by
just saying that I find it particularly ironic that on the
day that I am all prepared to speak to you about the molecular
orbital energy levels of polyatomic molecules for which I
am using methane as an interesting example,
the boards are screwed up. The reason for that apparently
is that this screen came down and will not go back up.
And one of the reasons that I have designed my presentation
technique for you this semester so heavily around the use of the
blackboard is that last year, when I taught the class,
I had a lot of feedback from students about how the one day
when we had audiovisual problems and I couldn't use my PowerPoint
and instead gave an impromptu chalk talk, that that was their
favorite lecture. Maybe next year we will
entirely be back to PowerPoint. I don't know.
We will see. But, fortunately,
I did write out my notes this morning in electronic format,
so I can make use of them on the side boards.
And, in addition, I want to display for you some
molecular orbital shapes and properties.
And I will do that by starting out --
Actually, I would like to start, if I could,
with this one. I will go back to the document
camera in a moment.
Starting out right where we left off last time,
you will recall that we were looking at diatomic molecules.
We started out with a seven orbital problem two lectures
ago. We looked at the planar BH
three molecule. We had a molecule where the MOs
were mixing in two dimensions. And then last time,
when we looked at homonuclear and heteronuclear diatomic
molecules the MOs were, in fact, mixing in just along
an axis in one dimension. And so, when we left the
situation last time, we had arrived at some kind of
an understanding of the energy levels in the carbon monoxide
molecule. And these were being developed,
especially, with reference to CO being a poisonous molecule,
-- -- whereas, N two,
another ten valence electron diatomic molecule was very,
very inert. Why was that?
It turns out that you have the very electronegative oxygen atom
on one side of the diagram with its very low energetically lying
orbitals mixing with the carbon orbitals that are higher in
energy. And the neat thing about this,
for the carbon monoxide molecule, is that it results in
an asymmetry of the molecular orbitals --
-- because the coefficients are not the same on the carbon side
as they are on the oxygen side as those atomic orbitals blend
together into the four sigma and four pi molecular orbitals that
we have. We have a total of eight MOs,
and they distribute energetically as four energy
levels in ascending energy that are sigma in symmetry.
That is, cylindrically symmetric about the internuclear
axis. And then we had four that were
pi. Two energies,
a pi bonding with four electrons and a pi antibonding
with just virtual empty orbitals.
And because this highest occupied molecular orbital of
carbon monoxide is so heavily concentrated on the carbon end
of the molecule, you can essentially view this
as a carbon-based lone pair. It has this big lobe here,
through which the carbon can serve as a nucleophile or as a
base and bind to something that has an empty orbital.
And if that something that has an empty orbital also has a
filled orbital that matches the symmetry of the LUMO of carbon
monoxide, then you get the possibility for multiple bonding
between the carbon of the CO molecule and that other entity.
And we will see that that other entity may, in fact,
be a d-block transition element, such as iron.
And what I wanted to do was to go ahead and show you that the
LUMO is an interesting and unsymmetrical one,
as well. Let's take a look at that.
And so, in this picture I have gone ahead and included a little
ball and stick diagram underneath the representation of
the orbital lobes. Here is the carbon,
and the oxygen is colored red. And you can see that the lobes
on the LUMO, the lowest unoccupied molecular orbital in
this system, are also large on carbon relative to oxygen.
The same as we had found for the highest occupied MO.
What this means is that that carbon atom in the CO molecule
is simultaneously a base in the sigma system.
And because this is our lowest unoccupied molecular orbital,
our carbon atom is actually an acid in the pi system.
And that makes it electronically very
complimentary to d-block elements, as we will see when we
get into the chemistry of elements that do have valence
d-orbitals in addition to s and p, coming up in a couple of
lectures. And so what can happen is that,
let's say that a carbon monoxide molecule somehow
erroneously finds its way into your blood stream,
you have there hemoglobin, the iron atom at the center of
which acts reversibly to bind the dioxygen molecule.
But it irreversibly binds to the carbon monoxide molecule
because the iron center, which is sitting at the center
of a heme unit that I mentioned, and we will talk about the
structure of hemoglobin and the way that it functions a little
bit later. But if CO gets in there,
it binds to the iron through the ***, acting as a base to
the metal acting as a sigma acid, and also through
d-electrons being able to act as a pi base from the metal binding
with this LUMO of the carbon monoxide molecule.
And this LUMO is doubly degenerate.
That means there are two of them at the same energy.
And we will come back to this issue of orbital degeneracy
later in today's lecture, but that electronic asymmetry
of carbon monoxide and the fact that the *** and LUMO are both
centered on the carbon end of the molecule are what make CO
such an interesting molecule and such a reactive molecule and
therefore a poison. And so now let us please go
back to the document camera.
What I have shown here are the five platonic solids.
Actually, I spent a lot of time over the weekend practicing
drawing these on the chalkboard so that I would be able to do
that very nicely for you. And here it comes that we do
not have that option today, so I will show them to you this
way. And the platonic solids are the
five regular polyhedra. And that means that they are
polyhedra that have, as their faces,
regular polygons that are all identical.
And the reason I am bringing this up today is that we had
talked about issues of symmetry with reference to molecular
orbital theory. And these are all very highly
symmetric shapes, as you can immediately
recognize. The buckyball that we looked at
earlier is not here because it has both five-membered rings and
six-membered rings on the faces. And so it doesn't have all the
faces identical. And those that do have all the
faces identical are the platonic solids.
And the complete list of those is shown here.
With triangles, you can put four equilateral
triangles together to make a tetrahedron.
There is actually a journal called Tetrahedron.
And there is another one called Tetrahedron Letters.
And there is another one called Tetrahedron Reports.
And the reason is that organic chemistry is carbon-based,
and carbon so often gets involved in forming tetrahedra.
And so the tetrahedron is a very important symbol of organic
chemistry. And we will get back to that.
And with triangles, if instead of putting four of
them together, you put eight of them together
this way, you get the octahedron.
And the octahedron is equally important as a symbol for
inorganic chemistry. And the reason for that is that
when we have metal ions in solution, they often sit at the
center of a coordination octahedron in which six ligands
bind to that metal center. And we are going to get into
how that was discovered pretty shortly by Alfred Werner,
another Nobel laureate in chemistry.
And with triangles you can also make the icosahedron shown here,
and this has 20 faces. And the icosahedron is
important in chemistry. And certain elements,
for example boron, actually have structures in the
solid state in which the boron atoms are arranged at the
vertices of a regular icosahedron.
So this is a chemically important shape as well.
And if you go from triangles to squares you can,
of course, make a cube. And probably the most familiar
of a platonic solid to us. And then, if we go up to
pentagons and put those together, as you can see here,
we can put 12 pentagons together in a regular way,
that gives rise to what we call the pentagonal dodecahedron.
And you can imagine that each of these vertices could be a C-H
unit, carbon-hydrogen. And then each carbon would have
its valence of four satisfied. And there would be all single
bonds at the parameter of this round molecule.
And, in fact, that dodecahedron molecule was
the objective of organic synthesis for quite a long time
before it was finally successfully synthesized by Leo
Paquette. You would be surprised with the
kinds of challenges, maybe, sometimes that do drive
chemists to do what they do. And that is the platonic
solids. I am going to be focusing our
attention on methane. And, if I could have the side
board go back to the computer for a moment,
that would be great. These are the notes for today's
lecture that I wrote up this morning that you will be able to
download later today, or maybe you already can.
I don't know. In any event,
when we approach the methane problem in molecular orbital
theory, what we do is recognize that the tetrahedron can be
conveniently inscribed into a cube by placing hydrogens at
alternating corners of the cube, as shown here.
And then, when we do that, the carbon atom of the methane
molecule lies at the very center of this cube.
And this way of arranging the system in space will help us to
simplify the problem of the molecular orbital energy levels
for the methane molecule. And we are going to be
ultimately working toward a comparison of the molecular
orbital description of the methane molecule with that
afforded by valance bond theory. Now, some of you approached me
after lecture last time and said, what happened to
hybridization? And, if you wanted to talk
about the methane molecule and the language of valence bond
theory, you would say that this carbon atom is sp three
hybridized in order that it may form simultaneously four two
electron bonds between the central carbon and the four
peripheral hydrogens. Well, where hybridization went
is that it stayed with valence bond theory.
Let me reemphasize the distinction between the
molecular orbital treatment of molecule electronic structure as
contrasted with the valence bond theory in which hybridization
plays a role. It does not play a role in the
language of MO theory, so please keep those quite
distinct. Now, we need to choose a
coordinate system for our problem.
And I won't spend too much time discussing how we choose the
coordinate system, but what we have done in the
present case with methane is to choose the x,
y, and z axes each to come out of the faces of the cube.
And we do this because that choice of coordinate system will
lead to the equivalence of the carbons' 2px,
2py, and 2pz orbitals in 3D space.
We could choose a different coordinate system,
and that would make the problem more difficult.
So, what we have done is chosen a convenient set of coordinates
where the x, y, and z axes each come out of the
faces of our cube. Now, we recognize that the
methane problem, like the homonuclear and
heteronuclear diatomic molecule problems we talked about last
time, is an eight orbital problem.
The diatomics N two and CO each had ten electrons to go
into their eight molecular orbitals.
And here, with methane, we have eight electrons,
four coming in as the valence orbitals from the carbon atom,
valence electrons from the carbon atom, rather,
and four coming in as the four valence 1s electrons for the
four hydrogens. And our eight orbitals are the
carbons 2s, 2px, 2py, and 2pz orbitals.
And we have four more orbitals, the 1s from each of the four
hydrogens. We know how many electrons are
going to be able to go into our MO energy level diagram.
We know how many MOs we are going to have because we know
how many valance AOs we have. And those numbers are equal at
eight. The choice of this problem is
predicated on my desire to show you how things progress as we go
from a planar system to a linear system to now a system that has
molecular orbitals that stretch out in three-dimensional space.
Now, we are going to take the following approach.
We are going to say, how can we generate linear
combinations of the four hydrogen 1s orbitals that will
be so constructed as to match the nodal properties of the
carbon atomic orbitals that are the valence orbitals of that
carbon? Okay.
So that is our goal, and that is our strategy.
And let me say also, that in this tetrahedral
symmetry, you can recognize that you cannot distinguish any one
of the four vertices of a tetrahedron from the other
three. And that is important.
And that is also true from the way that we have decided to
situate the hydrogen nuclei on this cube relative to our
coordinate system. In other words,
none of these four hydrogens lie on any of the three
Cartesian axes. And their relationship to the
coordinate system and to the shape of the cube each is
indistinguishable from that of the other three hydrogens.
And that is an important aspect of the way that we set up the
problem. And why do I mention that?
Because I mentioned that when constructing MOs in general,
one of the first things you can do, if you are going to be able
to take advantage of symmetry to help you solve the problem of
these MO energy levels and how they are constructed from linear
combinations of atomic orbitals is to identify symmetry-related
sets of atoms in orbitals. If you are keeping that in
mind, you will realize that we are treating all four hydrogens
together because they are indistinguishable from one
another in the tetrahedral shape of the methane molecule.
So, that is important. If we had a more complicated
molecule, such as if we were looking at --
I get to use a little bit of board space today.
Here is a slightly more complicated hydrocarbon
molecule. Here is a slightly more
complicated hydrocarbon molecule.
And in a molecule like this, this is cyclohexane drawn in a
chair confirmation. Sir Derek Barton actually was
the Nobel laureate who got his prize for discussing
conformational aspects of hydrocarbons.
We would find that the hydrogens split up into two
sets. They are not all equivalent in
the cyclohexane molecule in this frozen out chair confirmation
because we have one type that is equatorial and one type that is
axial on each of these carbons as we go around this
six-membered ring. And so there are different sets
that you would have to treat separately.
But methane is more symmetrical.
And all four hydrogens in the methane molecule are identical,
so we are going to treat them together in developing our
linear combinations. And, coming back to this,
what we are going to do, once again, to generate these
things, is to imagine the central atom atomic orbital as
growing out in space out to where the hydrogen nuclei are.
And then we are going to take the sign of the wave function
that we find out there and apply it to those hydrogens that are
out there in space in order to see what our linear combination
must look like. If you imagine the carbon 2s
orbital, which has the same sign, positive,
everywhere, and imagine it growing out to where the
hydrogens are, and we are labeling the
hydrogen A, B, C, and D, as shown here.
And we will keep that same labeling scheme throughout the
development of this problem. You would see that the carbon
2s positive wave function, as we imagine it growing out to
where the hydrogens are, would touch each of these
hydrogens at the same time. And, thus, we confer the sign
positive on all four of the contributors to this first of
our linear combinations. And what that will represent is
simultaneous bonding of the carbon 2s orbital with all four
hydrogens and with the same sign everywhere.
And so, we can write down one-half A plus B plus C plus D,
where I am using A here to
represent the hydrogen 1s orbital associated with hydrogen
labeled A. So I have just abbreviated that
in A. And, similarly,
B is the hydrogen 1s orbital associated with hydrogen B and
so on. So, this is a linear
combination of these four hydrogen orbitals.
And it is normalized with a half, here.
And we have the same coefficient on each of the four
hydrogens, so the size of the lobe that you would draw at each
four of these positions would be the same.
That is number one. We have built a linear
combination based on the nodal properties of the carbon 2s
atomic orbital. And now, let's do two more.
And we are going to base these on the nodal properties of the
central carbon 2px orbital and the central carbon 2py orbital.
I am using the same coordinate system as I started with,
namely, that the positive x-axis comes out of the face of
the cube and comes toward us, and the positive y-axis comes
out of this face of the cube and goes that way.
And we will look at z in a moment.
That one is going straight up out of the top face of the cube
for positive z. What you can see is that if you
imagine the carbon 2px atomic orbital as just growing out to
where the four hydrogens are, we will see that the hydrogens
in positions A and B will experience the positive lobe of
the carbon 2px orbital at the same moment as the two hydrogens
in back labeled C and D experience the negative lobe of
the carbon 2px orbital. And so, we give positive phase
to A and B and negative phase to C and D.
And we give them the same coefficient everywhere such that
this linear combination is normalized as one-half A plus B
minus C minus D.
That is our second linear combination of hydrogen
orbitals. And this one has been so
generated as to match the nodal property of the carbon 2px
orbital, the key feature of which is that it is everywhere
positive along positive x, and everywhere along negative x
it is negative. And the 2py orbital of carbon
has the property that everywhere in the plus y region of space,
it is positive, so that C and B will be
associated with a positive sign for this linear combination.
And the 2py orbital is negative everywhere along negative y,
back here. And that is where hydrogens A
and D are located. So, A and D will carry a
negative sign for this new linear combination,
which is one-half of minus A plus B plus C minus D.
This is just one way of writing down
the picture that we see here. And there is only one left to
be generated from the nodal properties of the carbon 2pz
orbital, which has its positive node oriented along positive z
and its negative lobe oriented along negative z,
and it has the x,y-plane as a nodal surface.
And so, therefore, hydrogens A and C will carry a
positive sign because they are oriented and located in the plus
z region of space. Whereas, hydrogens B and D are
located in the negative z region of space, so they will carry a
negative sign. And that one can be normalized
also with a normalization coefficient of one-half.
And so it is A minus B plus C minus D.
And just don't forget that these letters
refer to the 1s orbitals associated with the hydrogens
that are so labeled. And we started with identifying
the fact that the four hydrogens in this problem are all
equivalent. And, thus, their 1s orbitals
are all equivalent, indistinguishable from each
other with respect to their spatial orientation.
And, so we took four atomic orbitals, and we are
constructing from them four linear combinations of those
four atomic orbitals. I want to emphasize what I have
written here, which is that with the
coordinate system we have chosen and in this high tetrahedral
symmetry, the carbons 2p x, y and z orbitals are identical.
And, just like in a carbon atom floating free in space,
they are degenerate. That means they have the same
energy. And so we will talk about
orbitals in atoms being degenerate in a moment.
But we find that the 2p x, y and z orbitals on that carbon
are going to have the same energy, and they are degenerate.
And the molecular orbitals constructed from them in this
tetrahedral system will have the same property.
They will be degenerate. So, something that is
occasionally associated with high symmetry is multiple MO
degeneracy. Next, knowing what our carbon
atom atomic orbitals are and knowing also what our four
linear combinations are of the hydrogen 1s orbitals,
we can now allow them to interact in ways that are either
bonding or antibonding. And they interact,
of course, according to their nodal properties.
Those linear combinations that have the same nodal properties
as a particular carbon atom atomic orbital will lead to a
bonding interaction and an antibonding interaction.
And we have an eight orbital problem, so we better see eight
energy levels appearing in our molecular orbital energy level
diagram for this methane molecule.
And, when we go down here, starting at the lowest energy
molecular orbital, we find that it can be
constructed by adding to the carbon 2s orbital,
which is, once again, spherically symmetric,
this linear combination that is A plus B plus C plus D.
And we can draw this with a
surface like this, which envelopes all five of our
nuclei which has the same sign everywhere.
And so our lowest lying molecular orbital,
our most bonding molecular orbital, our most stabilized MO,
which can house a pair of electrons because it is singly
degenerate, is one that will look something like this.
It envelopes all five of our nuclei.
And, effectively, the pair of electrons is
associated simultaneously with all five nuclei.
And the wave function has the same sign everywhere,
just like the carbon 2s orbital from which this is partially
constructed does. And then, next we have three
molecular orbitals that are each built by forming bonding
interactions with the carbon's p-orbitals, px,
py, and pz with the linear combination that matches that
carbon orbital in terms of the nodal properties.
And we built them that way so that becomes particularly
straightforward. This one here is coming out,
the face that points to the right.
And so you can see that this one is based on the carbon 2py
orbital. And, if that carbon 2py orbital
makes a bonding interaction with the linear combination denoted
as minus A plus B plus C minus D,
the bonding interaction here is signified by this plus sign.
So, we have a plus sign here and a plus sign here.
And, thus, we have a molecular orbital that has the same nodal
properties as a carbon 2py orbital does,
which means that the x,z-plane is a nodal surface for this
molecular orbital. And what it looks like is kind
of a two-bladed propeller. You have a plus phase that is
distributed, enveloping the two hydrogens that we labeled B and
C, along with that positive lobe of the carbon 2py orbital.
So that you have that forming one blade of our two-bladed
propeller. And the blade with the other
sign is rotated relative to the first by 45 degrees.
Sorry, by 90 degrees, in fact, and will involve the
distribution of bonding character over carbon's negative
2py lobe interacting with these two hydrogens back here,
which are hydrogens A and D. And so we will visualize these
in a moment to make that more clear.
But these three bonds, one oriented along x,
one oriented along y, and one oriented along z all
look exactly like this. They are just rotated 90
degrees to each other in space, just like the x,
y, and z Cartesian axes are. I have only drawn one of them,
but we have three of them because there is a three-fold
orbital degeneracy in this molecular orbital.
So, singly degenerate and then triply degenerate.
And then, as we go up in energy, we will find that our
lowest unoccupied molecular orbital is constructed by
subtracting. It is the same as I have
written here, but with a minus sign,
the C 2s subtracting A plus B plus C plus D.
A, B, C and D hydrogens all
have the same sign to their wave function as each other,
but they have the opposite sign as the contribution from the
carbon 2s orbital to this molecular orbital.
And what that results in, as I have tried to indicate
with some red dashes here, is that you generate a nodal
surface in between the carbon and hydrogen nuclei that will go
completely around and will intersect perpendicular to each
of these carbon-hydrogen inter-nuclear vectors.
You have a change of sign as you are traversing the path from
carbon to any one of the four hydrogen nuclei.
And that is what we get by just reversing the sign relative to
the bonding counterpart of that orbital.
And that makes this one anti-bonding.
We will give it an asterisk here to denote antibonding
character to this molecular orbital.
And now, ascending in energy, we will find that for each one
of these orbitals that is bonded and oriented with respect to x,
y or z in Cartesian space, we find that there is an
antibonding counterpart. Again, what we are doing is
taking, for example, carbons 2py and subtracting the
linear combination that corresponds to carbon 2py in
terms of its nodal symmetry properties.
We are subtracting minus A plus B plus C minus D.
The carbon 2py has the same
plus, its positive lobe is oriented along positive y,
just as it is down here, but now we have reversed the
sign of the four hydrogens. And what this introduces will
be antibonding nodal surfaces in between the carbon and the
hydrogens. And they are strong antibonding
interactions because of the good directional overlap of,
say, the positive lobe of carbon's 2py with these
s-orbital contributions in the negative from hydrogens C and B,
here. And back here,
A and D rotated, of course, by 90 degrees.
One of the points that I was illustrating last time and
really trying to emphasize in the context of MO theory is
that, in general, we expect orbitals to be higher
in energy if they have more internuclear nodes.
And the energy of the orbitals is also affected by which atomic
orbitals are close to the MO in energy and also by factors of
overlap. And normally,
for example, a sigma bond is typically
associated with greater overlap than a pi bond because of the
directionality of the overlap. And here, you have an
interesting case, where this p-orbital is not
directed right at the hydrogen. And it is not a pi bond either.
It is something in between sort of sigma and a pi type of
orientation. It is an oblique interaction of
the hydrogen 1s wavefunction with that lobe of the p-orbital.
But, still, it gives rise to very good overlap down here,
and consequently a very strong antibonding character up here in
counterpart. And, from calculation,
this is the order of the energy levels that come out of that.
And so we have only four energy levels, two of which are triply
degenerate, so we indeed have eight wave functions that
correspond to the molecular orbitals of this system.
Question down here? Could you say that louder?
Why did this not have the one-half?
The one-half is missing there because I forgot to put it
there. Yes, to be normalized it should
have a one-half there. That is right.
But then there is a further point that that brings up,
which is the following. What I am implying here is that
there are equal amounts of carbon 2s in the bonding orbital
and as in the antibonding counterpart.
But that need not be the case. It could be that this is 0.6
here and that this 0.4 up here. And that is a greater level of
detail than I am really interested in going into for the
purposes of this problem. But your point,
with respect to the coefficient, is well taken.
Thanks. Christine, maybe we can fix
that on the one that gets posted on the web.
Let's now look at these things using our VMD program.
Starting from the lowest energy and we will work our way up.
Which orbital is this? This is a molecular orbital of
the methane molecule.
One way you can identify orbitals is where they are with
reference to the *** or the LUMO.
In this case, the *** is triply degenerate.
And there is one orbital lower in energy than the ***.
This would be then the *** minus one because it is one
below the *** in energy. That is the one which is the
carbon 2s, plus A plus B plus C plus D.
That is that MO there.
Actually, let's go ahead and take that one away.
Sorry about that.
Let's see if you can figure out which one this is.
In order to figure out which one it is, you need to be able
to realize where the nuclei are and where your internuclear
nodes are, if any. And, if so, how many.
This is one of our hydrogen contributions.
Here is a hydrogen contribution with opposite sign.
And there is a piece of our carbon 2p orbital in the center.
Now, this is just one of three identical counterparts that are
rotated 90 degrees with respect to each other in space,
so I am not going to show you all three of them.
They all look exactly the same. Is this one bonding or
antibonding? Yeah, this one is antibonding.
And it does not have the same sign on all the hydrogens,
so it has to be part of our LUMO, which is triply degenerate
and involves bonding or, in this case,
the antibonding between a carbon 2p orbital with a linear
combination of four hydrogens. You can see that when you have
an antibonding orbital, you are depleting the electron
density in the space between the nuclei rather than increasing it
as you do in a bonding orbital. Let's go ahead and look at the
bonding counterpart of this one. And we will do that.
And let's delete it. One thing that you will get,
if you haven't already gotten it, is you are going to get a
link to be able to download all the files that I used to show
you molecular orbitals with in class.
Because this program I am using, this VMD program,
is available on Athena. And you can also download it
yourself for free onto your own computer if you want to.
And so this is going to give you the opportunity to study
these orbitals and rotate them around at your leisure on your
desktop. And now, let's look at the
bonding counterpart to that antibonding orbital that we just
looked at. This one is the two-bladed
propeller to which I referred. And you can see that this
orbital has the same symmetry with respect to its nodal
properties as a carbon 2p orbital because it has a single
nodal plane. And one side all the signs are
positive, and on the other side all the signs are reversed.
And we have a nice piece of bonding going on there and there
when we have this oblique interaction of one of the lobes
of a p-orbital simultaneously with two of the hydrogens that
it sits directly between in space.
There is one of our triply degenerate components of our
highest occupied molecular orbital.
And then, there is just one left to visualize.
All right. We will delete that one.
We looked at our most symmetric and most bonding molecular
orbital. And now, we are going to go
ahead and look at the antibonding counterpart of that
one.
And so this is clearly a molecular orbital that is formed
using some piece of the carbon 2s orbital.
And you see that you get a change in sign as you go from
carbon to each of the hydrogens, that accordingly the electron
density is depleted in the region of space between the
nuclei. And that is a characteristic of
an antibonding orbital. And this one,
according to our diagram, in fact, is the LUMO.
So, as you will see over here, that was what we predicted our
lowest unoccupied molecular orbital would look like.
And then, up here, we had our triply degenerate
LUMO plus one based on the carbon 2p orbital interactions.
Now, you can see what these four types of molecular orbital
would look like. And now, you wonder,
just what kind of prediction does this make regarding
experimental observables. And so let's look at this
picture.
This diagram contains a number of interesting features.
It is a diagram that plots ionization energy here on the
x-axis against a number of different molecules on the
y-axis. At the top you have simply a
neon atom. Neon is our noble gas atom that
lies just immediately to the right of fluorine in the
periodic table. If anything is more
electronegative than fluorine, it would actually be neon.
This inert gas that is extremely difficult to ionize
because it holds so tightly onto all eight of its electrons.
Does it hold equally tightly onto all eight of its electrons?
The answer is no because, as you scroll across here in
ionization energy, you see that its 2p electrons
ionize here, and its 2s electrons ionize way over here.
The type of diagram I showed you last time,
where the 2s orbital, as you go across the periodic
table, decreases in energy faster than does the set of 2p
orbitals associated with an atom, is expressed in this
diagram here because we have neon.
And then we are going across the periodic table.
This next molecule is HF, an eight electron species,
and H two O, an eight electron species,
and then NH three, ammonia, the other eight
electron species. And then over here we get to CH
four, the molecule that we have just
discussed today. And what is very interesting
here is that the ionization energies of the molecular
orbitals, in the case of the molecules, and of the atom in
the case of neon track very nicely.
Here is the molecular orbital that has 2s character of HF,
of H two O, of NH three,
and of CH four. And it is rising in energy as
we go from right to left across the periodic table.
And that is because the carbon 2s orbital is much higher than
the neon 2s orbital is, for example.
And the carbon 2s orbital is contributing to that most
bonding of molecular orbitals of the methane molecule.
And then there is this manifold here, that corresponds to
ionizing an electron out of the *** of methane.
And it is a broadened peak distribution here because of the
different vibrational states that the methane can be found in
when, in fact, it experiences an incoming high
energy photon that is capable of knocking the electron out of the
methane molecule and ionizing it.
This is called photoelectron spectroscopy.
And you will be reading about it also in the context of your
problem set because we have a problem that deals with this.
And I point you to a piece of your text that covers
photoelectron spectroscopy. But the key point here is that
if you had all your eight electrons at one energy,
as valance bond theory might suggest for a molecule like
this, you might think you should only see one peak in the PES of
methane. But you see two because
methane, the molecule has two molecular orbital energy levels,
one of them being triply degenerate.
See you on Wednesday.