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enter image description hereWhat does this question mean by generally octahedral? Can this molecule adopt other shapes?

Also I have my suspicions about the Br-S-F bond angle being a perfect 180 degrees. Wouldn't vdW repulsions distort the bond angle and make it ~180 degrees? The way I see it, if we place the bromine axial, wouldn't its sheer size push down on the fluorines in the equatorial plane and thus distort the 180 degree bond angle?

On the other hand, now that I think of it, we only have one bromine pushing down on all the fluorines with an equal force and the net force should cancel out, making the 180 degree bond angle a theoretically perfect 180 degree bond angle.

Are there any ways to verify this other than jumping through hoops in one's mind? I tried making Marvin Sketch render the molecule but it wasn't useful (or I wasn't using it correctly).

Also, another choice I was doubting is choice 1. Are you sure there are 8 F-S-F bond angles < 90 degrees? I'm can see how the Br pushes down on the fluorines in the equatorial plane, creating four bond angles < 90 degrees. Where's the other four? Or are these from taking the Br to be in the equatorial plane?

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  • $\begingroup$ I have added a section to address your edit. $\endgroup$ – Martin - マーチン Jul 8 '14 at 6:44
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The term "generally octahedral" refers to a distorted octahedral arrangement of the ligands referring to the central atom (as ron already stated). In this case the distortion is due to the massively different bond lengths.

In addition to ron's answer I did a little calculation at BP86/cc-pVDZ. I did not use any symmetry constraints at first and the final geometry deviated from ideal $C_\mathrm{4v}$ geometry only slightly due to rounding errors. After symmetry constraint reoptimisation, the following parameters may be found:

\begin{array}{lrl} \text{parameter} & \text{value}&\\\hline \mathbf{d}(\ce{S-Br}) & 2.039 &\mathrm{\mathring{A}}\\ \mathbf{d}(\ce{S-F_{ax}}) & 1.638 &\mathrm{\mathring{A}}\\ \mathbf{d}(\ce{S-F_{eq}}) & 1.650 &\mathrm{\mathring{A}}\\\hline \angle(\ce{F_{ax}-S-Br}) & 180.0 &{}^{\circ}\\ \angle(\ce{F_{eq}-S-Br}) & 90.7 &{}^{\circ}\\ \angle(\ce{F_{ax}-S-F_{eq}}) & 89.3 &{}^{\circ}\\ \angle(\ce{F_{eq}-S-F'_{eq}}) & 90.0 &{}^{\circ}\\ \angle(\ce{F_{eq}-S-F''_{eq}}) & 178.7 &{}^{\circ}\\\hline \angle_\mathrm{D}(\ce{F_{eq}-S-F'_{eq}-F''_{eq}}) & 178.7 &{}^{\circ}\\\hline \end{array}

geometrical parameters of BrSF5

I was unable to determine a interconversion barrier related to the $\angle(\ce{F_{eq}-S-Br})$ bond angle change. I was also not able to find a different stable isomer.

In solid state it is most likely, that the geometric parameters will change due to packing effects and/or more internal entropy.


Addressing the edit:

Are you sure there are 8 F-S-F bond angles < 90 degrees? I'm can see how the Br pushes down on the fluorines in the equatorial plane, creating four bond angles < 90 degrees. Where's the other four? Or are these from taking the Br to be in the equatorial plane?

Yes, the bromine pushes down the fluorines of the equatorial plane resulting in $\angle(\ce{F_{ax}-S-F_{eq}})=89.3^{\circ}$ bond angle. Due to this, the sulfur is out of plane with the equatorial fluorine atoms. Since the planes expanded by $\ce{Br-S-F_{eq}}$ and $\ce{Br-S-F'_{eq}}$ have to be at $90^\circ$ due to symmetry constraints, this is creating also a slightly smaller angle than $90^\circ$ for the equatorial fluorines. In this very case it can be found to be $\angle(\ce{F_{eq}-S-F'_{eq}})=89.992^{\circ}$, which was rounded by the program to fit the one decimal place restriction. The application of this is just trigonometry and you can derive it as a simple thought experiment - if you like.

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  • $\begingroup$ What's " BP86/cc-pVDZ"? $\endgroup$ – Dissenter Jul 8 '14 at 6:08
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    $\begingroup$ @Dissenter It denotes the level of theory used for the quantum chemical calculation. In this particular case it is the conjunction of the Becke88 and Perdew86 density functional together with a correlation consistent polarised valence double zeta basis set by Dunning et. al. It is a quite reliable tool for molecular geometries, while it is sufficiently simple to calculate (it does not need much time). $\endgroup$ – Martin - マーチン Jul 8 '14 at 6:24
  • $\begingroup$ Sorry I'm trying to think of this again; I'm not sure why the Feq-S-F'eq bond angles would be compressed, even if the S were out of the plane. $\endgroup$ – Dissenter Jul 8 '14 at 15:57
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    $\begingroup$ @Dissenter Please have a look at this Q&A I posted especially for you. $\endgroup$ – Martin - マーチン Jul 9 '14 at 13:27
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I believe the writer is using the term "generally octahedral" much like when I say an orbital is "roughly $\ce{sp^2}$ hybridized." Few compounds are perfect octahedrons, few orbitals are exactly $\ce{sp^2}$ hybridized. If a molecule's structure looks generally like an octahedron, but it isn't perfectly octahedral, then we can say that it is "generally octahedral" or better yet, a distorted octahedron.

A useful way to determine if something is a perfect octahedron, tetrahedron, $\ce{sp^2}$ orbital, whatever, is through the use of symmetry. If any two atoms can be interconverted by rotation about an axis of symmetry or reflection through a plane of symmetry, then those atoms must be equivalent. If two atoms cannot be interconverted by such symmetry operations than they must be non-equivalent. Point groups and the symmetry elements they contain can make for an entire chemistry course, but the essentials can be learned quickly. Here is a useful reference (one of many, you can google "molecular symmetry, point groups" to find something more to your liking) on the subject.

Let's use the following drawing as a starting point to discuss the geometry of $\ce{BrSF_5}$. We will use the term "axial" or "apical" to describe the F and Br atoms at the top and bottom of the drawing respectively, while the remaining 4 fluorines are termed "equatorial.

enter image description here

Applying symmetry to $\ce{BrSF_5}$ tells us the following

  • There is a 4-fold rotational axis passing through the Br-S-F(axial) atoms
  • There are 4 planes of symmetry containing this axis

The rotational axis interconverts the 4 equatorial fluorine atoms, therefor they are equivalent as are the 4 F-S-F angles which must be (360/4) 90 degrees. Further, at least as I've drawn it here, the same rotational axis interconverts the bromine with itself (it sounds silly, but think about it) and the axial fluorine with itself. Therefor, the Br-S-F(axial) angle must be 180 degrees. There is no plane of symmetry containing the S and 4 equatorial fluorines (because reflection through such a plane does not interconvert what's above the plane (F) with what's below the plane (Br). This is a very important observation. It tells us that the Br-S-F(equatorial) angle cannot be exactly 90 degrees. It might be 90.001 or 85.278 degrees, but it can't be exactly 90 degrees - because of the lack of symmetry. Symmetry can only tell us if things are the same or different, it can't tell us if different things differ by a lot or a little, we need to use our other chemical skills to do that. So if the angle is not 90 degrees, then the S and 4 equatorial fluorines do not lie in a common plane; the 4 equatorial fluorines must be canted towards either the axial fluorine or the axial bromine. I don't know which of those two options is preferred, but I would guess that the energy difference between these two forms is small and the barrier to their interconversion is small, so I might expect rapid interconversion between these 2 slightly distorted octahedral forms at room temperature. At absolute zero, or perhaps in a crystal, only one of these two forms would prevail.

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  • $\begingroup$ I believe that the distortion of the bromine atom moving from "axial" to "equatorial" has a lesser barrier, than the (symmetry constraint) distortion of $\angle(\ce{F_{eq}-S-Br})$. But I was not able to find another conformer or a interconversion barrier (see my answer). $\endgroup$ – Martin - マーチン Jul 8 '14 at 6:27
  • $\begingroup$ @Martin Is the basis set you used accurate at predicting barrier heights, like in amine inversion? $\endgroup$ – ron Jul 8 '14 at 12:57
  • $\begingroup$ The basis set should be fairly accurate for geometries and still good enough for reaction barriers. The method is quite robust, but ab initio or hybrid functionals would probably predict a better barrier. The biggest trouble here is converging the scf because of a very high symmetry and a lot of electrons - I simply cannot afford anything more costly at the moment for these projects. $\endgroup$ – Martin - マーチン Jul 8 '14 at 14:48
  • $\begingroup$ @Martin were you surprised that you didn't find a second minimum with the 4 equatorial fluorines canted towards the axial bromine? $\endgroup$ – ron Jul 8 '14 at 15:37
  • $\begingroup$ Not really, the out of plane distortion is not even a degree on that level of theory. I also suspect that this is a very shallow minimum - If there is another minimum, it will be hard to find with any method. One would probably have to do highly accurate calculations on at least MP2 with QZ basis optimisations or even better CCSD(T), but who could afford that. Or lots of singlepoint scans to map the PHS/PES. $\endgroup$ – Martin - マーチン Jul 9 '14 at 2:23

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