Need Help with Organic Spectroscopy & NMR?

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The discussion revolves around the interpretation of NMR spectra for three different tri-methyl substituted benzenes. Participants emphasize the importance of identifying the number of distinct proton signals in the aromatic region to determine the substitution patterns. Specifically, they note that one signal indicates 1,3,5 substitution, two signals indicate 1,2,3 substitution, and three signals indicate 1,2,4 substitution. The aromatic region is confirmed to be around 7 ppm. When faced with complexities such as singlets and doublets in the spectra, participants suggest using integration to further distinguish between the isomers, as symmetrical isomers yield singlets while nonsymmetrical ones produce more complex splitting patterns. The conversation highlights practical strategies for analyzing NMR data effectively.
suski
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anyone here is good at organic spectroscopy ??
I really need help with NMR spec > <

thanks a lot !
 
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I don't know if I'd call myself 'really good' with NMR spectra, but I've dealt with deciphering them before. I'm sure others here have too, so just tell us what your specific problem is rather than asking if we can solve it first...
 
the question i am trying to solve has 3 structures given, all three are benzenes substituted with 3 CH3- groups but each with different substitution locations
and the question asks to look at 3 spectrums which corresponds to each of these 3 tri-methyl benzenes and to determine which spectrum is for which tri-methyl benzene..
mm...does that make sense ?
is there a way to determine the positions of the methyl groups ? like by looking at the H NMR or C NMR ?

Thanks alot!
 
Yes it should be easy. The only possible ways you could trisubstitute w/ methyls would be
in the

1,2,3

1,3,5

1,2,4 positions.

Just look for the number of distinct proton signals you see in the aromatic region in the HNMR. If you see just 1 signal it must correspond to 1,3,5 substitution, 2 signals to 1,2,3 substitution, and 3 signals to 1,2,4 substitution.

You don't even need to worry about splitting or integration at all.
 
thanks!
mm...there are two singlets for two of the HNMR spectrum and the other one has a doublet of doublet...
is the aromatic region around 7ppm ?
 
suski said:
thanks!
mm...there are two singlets for two of the HNMR spectrum and the other one has a doublet of doublet...
is the aromatic region around 7ppm ?

Yes the aromatic region is down around 7 ppm. If you can't figure out which one is which from just the number of signals, then go a step further, either pick integration or splitting to figure out which one is which. I'd pick integration since H on aromatic rings can be tricky sometimes because you can have long range coupling. From integration you should be able to figure out which one is which.
 
suski said:
thanks!
mm...there are two singlets for two of the HNMR spectrum and the other one has a doublet of doublet...
is the aromatic region around 7ppm ?

Yeah, that happens. The carbon signal would act like GNW indicated but the Proton spectrum will give singlets for the regular (regular = symmetrical) isomers. The odd isomer (nonsymmetrical) will give you a more fully coupled spectrum in proton. Try looking at the methyl groups for the two spectra that have singlets. Notice anything?
 

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