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Interpretation:
The structure for an alcohol with molecular formula
Concept introduction:
Few elements such as
There are four features of NMR spectra that help in predicting the structure:
The number of signals in the spectra tells us the number of different types of protons present in the molecule.
Chemical shift is the measurement on
Area under the peaks tells us the number of similar protons.
The splitting pattern of a signal tells us about the number of protons present on adjacent carbon.
NMR signal of a particular proton generally splits into N + 1 peaks, where N is the number of hydrogen atoms on the adjacent atoms. If there is no hydrogen present on the adjacent atom, then resonance will be singlet. If there is only one hydrogen present on adjacent carbon, then signal will split into two peaks or have doublets. Two hydrogens on adjacent atoms split the signal into three peaks, a triplet, and so on.
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Chapter 9 Solutions
Organic Chemistry
- 1. For an unknown compound with a molecular formula of C8H100: a. What is the DU? (show your work) b. Solve the structure and assign each of the following spectra. 8 6 2 ō (ppm) 4 2 0 200 150 100 50 ō (ppm) LOD D 4000 3000 2000 1500 1000 500 HAVENUMBERI -11arrow_forward16. The proton NMR spectral information shown in this problem is for a compound with formula CioH,N. Expansions are shown for the region from 8.7 to 7.0 ppm. The normal carbon-13 spec- tral results, including DEPT-135 and DEPT-90 results, are tabulated: 7 J Normal Carbon DEPT-135 DEPT-90 19 ppm Positive No peak 122 Positive Positive cus и 124 Positive Positive 126 Positive Positive 128 No peak No peak 4° 129 Positive Positive 130 Positive Positive (144 No peak No peak 148 No peak No peak 150 Positive Positive してしarrow_forward3. Propose a synthesis for the following transformation. Do not draw an arrow-pushing mechanism below, but make sure to draw the product of each proposed step (3 points). + En CN CNarrow_forward
- Label the spectrum with spectroscopyarrow_forwardLabel the spectrum with spectroscopyarrow_forwardQ1: Draw the most stable and the least stable Newman projections about the C2-C3 bond for each of the following isomers (A-C). Are the barriers to rotation identical for enantiomers A and B? How about the diastereomers (A versus C or B versus C)? enantiomers H Br H Br (S) CH3 H3C (S) (R) CH3 H3C H Br A Br H C H Br H3C (R) B (R)CH3 H Br H Br H3C (R) (S) CH3 Br H D identicalarrow_forward
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