Spectra Problem #9 Solution

Chapter 13: Spectroscopy

SPECTRA PROBLEM #9 SOLUTION

In the MS, the molecular ion occurs at m/z = 150 indicating the MW = 150 g / mol.
The IR shows an C=O (1680 cm^-1) and possible C-O (1250-1000 cm^-1) but no -OH or -NH (around 3500 cm^-1)
13 C-nmr shows 7 types of C, including a C=O (196 ppm), and 3 ArC (163, 131, 130 and 114 ppm) plus 2 other hydrocarbon C (55 and 26 ppm)
H-nmr

d/ppm	multiplicity	integration	assignment
8.0	doublet	2	2 x ArH
7.0	doublet	2	2 x ArH
3.9	singlet	3	isolated CH₃deshielded, possibly by O
2.6	singlet	3	isolated CH₃ slightly deshielded

The lack of a peak at about 9 ppm rules out an aldehyde and therefore suggests a ketone.
The peaks at 7-8 ppm in the H-nmr and the 4 peaks in the aromatic region of the ¹³C-nmr suggests a para-disubstituted benzene
This gives the following pieces C₆H₄, C=O, and 2 different -CH₃

Summary....

The MS indicated MW = 150 g/mol.
The IR showed the presence of C=O and maybe C-O bonds.
The¹³C C=O at 196 ppm is a little high for an ester, and is more indicative of an aldehyde or a ketone.
H nmr gave the following pieces C₆H₄, C=O, and 2 different -CH₃
Leads to a suggested molecular formula of C₉H₁₀O = 9 x 12 + 10 x 1 + 1 x 16 = 134 g/mol.
This is 16 short, suggesting an extra O, which if we look at the H-NMR is probably as part of -OCH₃ (peak at 3.9 ppm).
So with all this information we have the following pieces: C₆H₄, C=O, -CH₃and -OCH₃

Altogether....

With the pieces we have : C₆H₄, C=O, -CH₃and -OCH₃
IR and 13C suggest a ketone rather than an ester.
H-nmr and ¹³C-nmr suggest a para-disubstituted benzene
Checking the H-nmr, we can see the two uncoupled methyl groups, one deshielded by O, the other slightly deshielded by the C=O and the para-disubstituted benzene.

p-methoxyacetophenone