Question 33
Average on part (a) was 4.05 / 7 amongst those who attempted it
Average on part (b) was 1.267 / 2 amongst those who attempted it
Average on part (c) was 1.133 / 3 amongst those who attempted it
Average on part (d) was 1.083 / 3 amongst those who attempted it
Half of all those who took the exam did not respond to all of part of this question.
For part (a), as in the earlier 7 mark question, marks were lost by not accounting for evidence that provided justification for parts of the answer. The information provided and which needed to be presented is:
- W oxidises to X which further oxidises to Y. X can be oxidised in another way to Z, the salt of Y. Based on HSC chemistry and all of the compounds containing C, H, and O only, we have W = primary alcohol, X = aldehyde, Z = carboxylic acid. The fact that W is a primary alcohol is confirmed by its reaction with sodium metal and its O-H stretch in the IR. The fact that W does not react with sulfuric acid is therefore strange and requires comment.
- The percentage composition data gave that Y has an empirical formula of C3H6O.
- The parent ion mass-to-charge ratio gives the parent ion at m/z = 116, meaning the molar mass is 116 g mol-1, from which we can deduce that the molecular formula is C6H12O2.
- The triplet / quartet combination in the 1H NMR, accounting for 5 hydrogens, is strong evidence of an ethyl group that is isolated (i.e. its neighbours do not bear any H atoms).
- The 6H singlet in the 1H NMR must also be isolated, and being 6H must be either two identical methyls, three identical methylenes (CH2), or six identical methines (CH). Given we already have an ethyl and a carboxylic acid (so 3C accounted for), it can't be six methines and three methylenes is also impossible if they are to be isolated, so we must have two methyls. The proton from the carboxylic acid is missing from the 1H NMR as its signal will be way above 3 ppm.
- The 1H NMR plus knowledge of the carboxyl group gives the following fragments: -COOH, -CH3 x 2 (identical and isolated), -CH2CH3 (isolated), which account for C5H12O2, and so we have one more carbon atom - which is good news, as we can use it to get the required isolations. Piecing these together, there is only one possibility: Y is 2,2-dimethylbutanoic acid.
- Looking at this structure, the reason for the non-reaction of W with sulfuric acid becomes clear. Primary alcohols should undergo dehydration but W is 2,2-dimethyl-1-butanol, which cannot dehydrate as C2, the carbon adjacent to the carbon bearing the hydroxyl group (C1) is tertiary and bears no H atom, making elimination (and the consequent formation of a C1 to C2 double carbon-carbon bond) impossible. This non-reaction thus provides evidence that confirms the structure of Y. This information could also have been used in the reverse way: if W is a primary alcohol but does not undergo elimination, the reason is likely the carbon skeleton is HO-C-C(C)2-C, and thus we have the likely arrangement of five of the six carbon atoms. In fact, we have all six as, whichever branch we lengthen, we end up with a carbon attached to a CH2OH, two one-carbon chains, and a two-carbon chain.
For part (b), it was important to note that Z is the salt of Y and so the only difference is the carboxyl group being present as -COOH or -CO
2-. The
13C NMR for all but carbon 1 should be very similar (four environments, one with double intensity, all below 50 ppm) while C1 of Z will experience greater electron density as an anion and so be shifted from its position near 185 ppm shown for Y. I did not penalise comments that predicted the direction of the shift incorrectly, the point was to recognise that there would be a shift.
Part (c) was meant to be two relatively straight-forward marks and one difficult mark - identifying the bonds in the IR by position (easy) and then explaining why A had an unusual appearance. The question even identified A as unusual, identifying it as the one that was different for its type. However, it is evident that many took this as meaning A wasn't due to a hydroxyl (despite its position), which implies the hydroxyl (a large and prominent bond stretch) was somewhere else. The stretches were:
A = O-H
B = C-H
C = C=O
D = C-O
This is entirely consistent with every other IR spectrum presented in the HSC. The unusual feature is that A, the hydroxyl stretch, looks nothing like it usually would - very broad and intense. The reason for the difference is that this is a
gas-phase IR spectrum. What we know about gases includes that intermolecular interactions are absent, so this spectrum is unaffected by hydrogen bonding, which is the reason that hydroxyl groups are usually broad. I know no HSC student will have done IR in gas phase or likely seen one, but in discussing IR everyone would learn about the O-H stretch being so intense and broad and different from virtually every other IR signal, and I would hope most teachers / books would mention that broadening is due to hydrogen bonding.
Part (d) contained a typo. It was meant to ask the name of Z, not Y, to test whether the cation that would be in the salt was identified correctly. The broader point in (d) was how questions can cross topics, as this was actually based in the module 8 content of cation and anion testing. Most did not recognise this, and the marks awarded were mostly for the name of Y, where the correct answer was credited along with correct names of incorrect Y structures from part (a). The answer was meant to be sodium 2,2-dimethylbutanoate, the sodium cation coming from the sodium hydroxide used to precipitate the silver nitrate, described in the preamble to the question.
The chemistry of part (d) involved the formation of silver oxide:
2 AgNO3 (aq) + 2 NaOH (aq) -----> Ag2O (s) + 2 NaNO3 (aq) + H2O (l)
or
2 Ag+ (aq) + 2 OH- (aq) -----> Ag2O (s) + H2O (l)
which is then re-dissolved in ammonia:
Ag2O (s) + 4 NH3 (aq) + H2O (l) -----> [Ag(NH3)2]+ (aq) + 2 OH- (aq)
The oxidant was the diamminesilver(I) cation, [Ag(NH
3)
2]
+, that resulted from these reactions (and hence the answer to (d)(ii). The answer to (d)(iii) was then the above equations.
The question did
not ask for the redox reaction in the silver mirror test, but if it had, the half-equations would be:
[Ag(NH3)2]+ (aq) + e- -----> Ag (s) + 2 NH3 (aq)
and
CH3-CH2-C(CH3)2-C(=O)H (aq) + H2O (l) -----> CH3-CH2-C(CH3)2-CO2- (aq) + 3 H+ (aq) + 2e-
for an overall reaction of:
CH3-CH2-C(CH3)2-C(=O)H (aq) + 2 [Ag(NH3)2]+ (aq) + H2O (l) -----> CH3-CH2-C(CH3)2-CO2- (aq) + 2 Ag (s) + 3 NH4+ (aq) + NH3 (aq)
The Ag (s) produced adheres to the inner surface of the reaction vessel producing the "silver mirror". Note that this equation accounts for the reaction of hydrogen ions with ammonia, explaining the ammonium ions in the product mixture. Consequently, the salt Z could also be ammonium 2,2-dimethylbutanoate. An equation like this written with a carboxylate and ammonia, both weak bases in the presence of hydrogen ions would be unacceptable.
On part (d), it was disappointing to see mistakes over the valence of silver, which exists in the +I oxidation state in compounds.
