Advanced Organic Chemistry: H-1 NMR spectrum of 2-methylpentane (CH3)2CHCH2CH2CH3

Interpreting the 1H NMR spectrum of 2-methylpentane

[Author ©  Dr Phil Brown PhD: Doc Brown's advanced level organic chemistry exam revision notes suitable for students of UK A level chemistry courses & US K12 grade 11, grade 12 and AP honors chemistry courses: Molecular spectroscopy - analysing the 1H NMR spectrum of 2-methylpentane  [spectra page updated Mar 13th 2026 *]

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 The chemistry of ALKANES and the petrochemical industry

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 H-1 proton NMR spectroscopy - spectra index

See also comparing infrared, mass, 1H NMR & 13C NMR spectra of the structural alkane isomers of C6H14


Introductory note on the 1H NMR spectra of 2-methylpentane

Students and teachers please note my explanation of the proton NMR spectrum of 2-methylpentane is designed for advanced, but pre-university, chemistry courses.

The chemical shift δ splitting pattern effects for 2-methylpentane are confined to a proton spin-spin coupling effects analysed using the n+1 rule for adjacent non-equivalent proton fields (n is the number of neighbouring protons in a non-equivalent different chemical environment for the 2-methylpentane molecule).

It is assumed that the integrated intensities of the 1H NMR δ chemical shifts give the ratio of the protons in the different non-equivalent chemical environments of the 2-methylpentane molecule.

The most common solvent used for investigating the 1H NMR spectrum of compounds like 2-methylpentane, is CDCl3 and other deuterated solvents to avoid confusion with a 1H NMR signal, 2D (2H) has a different NMR chemical shift.

low and high resolution H-1 proton nmr spectrum of 2-methylpentane analysis interpretation of chemical shifts ppm spin spin line splitting diagram H1 1-H nmr for 2-methylpentane: isohexane doc brown's advanced organic chemistry revision notes

TMS is the acronym for tetramethylsilane, formula Si(CH3)4, whose protons are arbitrarily given a chemical shift of 0.0 ppm. This is the 'standard' in 1H NMR spectroscopy and all other proton shifts, called chemical shifts, depend on the individual (electronic) chemical environment of the hydrogen atoms in an organic molecule - 2-methylpentane here.

The chemical shifts quoted in ppm on the diagram of the H-1 NMR spectrum of 2-methylpentane represent the peaks of the intensity of the chemical shifts of (which are often groups of split lines at high resolution) AND the relative integrated areas under the peaks gives you the ratio of protons in the different chemical environments of the 2-methylpentane molecule.

2-methylpentane C6H14, alkanes structure and naming (c) doc b , alkanes structure and naming (c) doc b , alkanes structure and naming (c) doc b

For more see The molecular structure, classification and naming of alkanes

Interpreting the H-1 NMR spectrum of 2-methylpentane

In terms of spin-spin coupling from the possible proton magnetic orientations, I have only considered the interactions of non-equivalent protons on adjacent carbon atoms

e.g. -CH2-CH3, -CH2-CH- protons etc.

For relatively simple molecules, the low resolution H-1 NMR spectrum of 2-methylpentane is a good starting point (low resolution inset diagram above).

The hydrogen atoms (protons) of 2-methylpentane occupy 5 different chemical environments so that the low resolution NMR spectra should show 5 peaks of different H-1 NMR chemical shifts (diagram above for 2-methylpentane).

(CH3)2CHCH2CH2CH3

Note the ratio 6:1:2:2:3 of the five colours of the protons in the five chemically different environments

Although there are 14 hydrogen atoms in the molecule, theoretically there only 5 possible chemical environments for the hydrogen atoms in 2-methylpentane molecule.

The integrated signal proton ratio 6:1:2:2:3 observed, corresponds with the structural formula of 2-methylpentane.

The high resolution H-1 NMR spectrum of 2-methylpentane

All low and high resolution spectra of 2-methylpentane should show 5 groups of protons and in the ratio expected from the formula of 2-methylpentane, but some 1H NMR chemical shifts are very close together.

The ppm quoted on the diagram represent the peak of resonance intensity for a particular proton group in the molecule of 2-methylpentane - since the peak' is at the apex of a band of H-1 NMR resonances due to spin - spin coupling field splitting effects - see high resolution notes on 2-methylpentane below.

So, using the chemical shifts and applying the n+1 rule to 2-methylpentane.

I've dealt with them from left to right on a colour coded basis for proton resonance lines (a) to (e).

δ (a) 1H Chemical shift of the 'blue' CH3 protons  (CH3)2CHCH2CH2CH3

A doublet at 0.86 ppm, the six (CH3)2 group protons resonance is split into a doublet resonance by the adjacent CH proton (n+1 = 2).

The six protons of the left-hand methyl groups are equivalent to each other in 2-methylpentane, so they give identical chemical shifts because of being in identical chemical environments.

Evidence for the presence of a CH group in the molecule of 2-methylpentane.

δ (b) 1H Chemical shift of CH proton  (CH3)2CHCH2CH2CH3

A nonet at 1.54 ppm, the CH proton resonance is split by the 6 adjacent CH3 protons and 2 CH2 protons (n+1 = 9).

Evidence for the presence of a (CH3)2CHCH2 group in the molecule of 2-methylpentane

δ (c) 1H Chemical shift of the 'green' CH2 protons  (CH3)2CHCH2CH2CH3

A quartet at 1.15 at ppm, the CH2 protons resonance is split by the adjacent CH proton and CH2 protons (n+1 = 4)

Evidence for the presence of a CHCH2CH2 group in the molecule of 2-methylpentane

δ (d) 1H Chemical shift of 'brown' CH2 protons  (CH3)2CHCH2CH2CH3

A sextet at 1.29 ppm, the CH2 protons resonance is split by the adjacent CH2 protons and CH3 protons (n+1 = 6)

Evidence for the presence of a CH2CH2CH3 group in the molecule of 2-methylpentane

δ (e) 1H Chemical shift of CH3 protons  (CH3)2CHCH2CH2CH3

A triplet at 0.88 ppm, for the 'right-hand' CH3 protons resonance, which is split by the adjacent CH2 protons (n+1 = 3)

Evidence for the presence of a another CH3 group in the molecule of 2-methylpentane


Summary of the 1H NMR spectrum of 2-methylpentane

The ¹H NMR spectrum of 2-methylpentane shows five distinct proton environments with chemical shifts between 0.9–1.4 ppm, all in the alkyl region.

The spectrum is dominated by methyl and methylene signals, with the most downfield shift near the branched carbon.


Key Proton Environments in 2-Methylpentane

2-Methylpentane (C6H14) is a branched alkane with no electronegative atoms or π systems, so all proton signals appear in the upfield region. Here's a breakdown of the chemical shifts and integration:

Chemical Shift (δ, ppm) Proton Type Environment Integration
~0.90, 0.86 ppm CH3 Terminal methyls (–CH3 at C2) 6H (2×CH3)
~0.95, 0.88 ppm CH3 End methyl (–CH3 at C5) 3H
~1.20, 1.15 and 1.29 ppm CH2 Methylene (–CH2– at C3 and C4) 4H (2×CH2)
~1.40, 1.54 ppm CH Methine (–CH– at C2) 1H

Sources: ChemicalBook spectrum data, Heriot-Watt NMR handout


Common Misconceptions in ¹H NMR Interpretation

  • Assuming all methyl groups are equivalent: In branched alkanes, methyl groups near branching (like the one at C2) are chemically distinct and appear at slightly different shifts.
  • Expecting downfield shifts: Without electronegative atoms or π systems, all signals appear upfield (δ < 2 ppm).
  • Overlooking symmetry: Students may miss that two terminal methyl groups are equivalent, simplifying the spectrum.

Exam Revision Tips for ¹H NMR Spectroscopy

These tips apply across AQA, Edexcel, OCR, WJEC, CCEA, CIE, IB, and US AP Chemistry syllabi:

  • Master the alkyl region: For alkanes, expect δ = 0.8–1.5 ppm. Learn to distinguish CH3, CH2, and CH signals.
  • Use integration wisely: Match proton counts to molecular formula. For C6H14, expect 14 protons total.
  • Multiplicity matters: Use splitting patterns (n+1 rule) to identify adjacent protons:
    • CH3 next to CH2 → triplet
    • CH2 next to CH3 → quartet
    • CH next to CH3 and CH2 → multiplet
  • Draw the structure: Label each hydrogen environment to predict shifts and splitting.
  • Compare spectra: Practice with straight-chain versus branched alkanes to see how branching affects chemical shifts and multiplicity.
  • Combine with IR and MS: Exams often require deducing structure from multiple spectra.
Comparing the infrared, mass, 1H NMR and 13C NMR spectra of the five structural alkane isomers of C6H14

NOTE: The images are linked to their original detailed spectral analysis pages AND can be doubled in size with touch screens to increase the definition to the original hexane, 2-methylpentane, 3-methylpentane, 2,2-dimethylbutane and 2,3-dimethylbutane image sizes.  These five molecules are structural isomers of saturated alkanes of molecular formula C6H14 and exemplify the infrared, mass, 1H NMR and 13C NMR spectra of lower aliphatic alkanes (non-cyclic alkanes).

Infrared spectra below.

INFRARED SPECTRA:

Apart from the significant differences in the fingerprint region at wavenumbers 1500 to 400 cm-1, there are no other great striking differences, but each could be identified from its infrared spectrum.

All the absorption bands are typical of molecules containing saturated alkyl structure and there are no characteristic infrared absorptions due to a specific functional group.

Infrared spectra above, mass spectra below.

MASS SPECTRA: Base ion peaks plus m/z comments.

Hexane: m/z 57, 42 and 56 prominent

2-methylpentane: m/z 43, 42 and 71 prominent

3-methylpentane: m/z 57, 41 and 56 prominent

2,2-dimethylbutane: m/z 43, 41, 57 and 71 prominent

2,3-dimethylbutane: m/z 43, 41, 42 and 71 prominent

Mass spectra above, 1H NMR spectra below.

1H NMR SPECTRA: They can all be distinguished by their different integrated proton ratios - need very high resolution.

Hexane: 3 1H δ shifts, H ratio 3:2:2 (6:4:4 in formula)

2-methylpentane: 5 1H δ shifts, H ratio 6:3:2:2:1

3-methylpentane: 4 1H δ shifts, H ratio 6:4:3:1

2,2-dimethylbutane: 3 1H δ shifts, H ratio 9:3:2

2,3-dimethylbutane: 2 1H δ shifts, H ratio 6:1 (12:2 in formula)

1H NMR spectra above, 13C NMR spectra below.

13C NMR SPECTRA: From the number of shifts, you can't distinguish (iii) and (iv) but you can distinguish them from (i), (ii) and (v). (i) Hexane: 3 13C δ shifts

(ii) 2-methylpentane: 5 13C δ shifts

(iii) 3-methylpentane: 4 13C δ shifts

(iv) 2,2-dimethylbutane: 4 13C δ shifts

(v) 2,3-dimethylbutane: 2 13C δ shifts

13C NMR spectra above.

The splitting pattern from proton spin-spin coupling effects is analysed using the n+1 rule for adjacent non-equivalent proton fields (n is the number of neighbouring protons in a non-equivalent different chemical environment) and applied to the 1H NMR spectrum of 2-methylpentane.

Number of protons 1H causing splitting Splitting pattern produced from the n+1 rule and the theoretical ratio of line intensities
0 means no splitting             1            
1 creates a doublet           1   1          
2 creates a triplet         1   2   1        
3 creates a quartet       1   3   3   1      
4 creates a quintet     1   4   6   4   1    
5 creates a sextet   1   5   10   10   5   1  
6 creates a septet 1   6   15   20   15   6   1

Key words & phrases:: isohexane Interpreting the proton H-1 NMR spectra of 2-methylpentane, low resolution & high resolution proton nmr spectra of 2-methylpentane, H-1 nmr spectrum of 2-methylpentane, understanding the hydrogen-1 nmr spectrum of 2-methylpentane, explaining the line splitting patterns in the high resolution H-1 nmr spectra of 2-methylpentane, revising the H-1 nmr spectrum of 2-methylpentane, proton nmr of 2-methylpentane, ppm chemical shifts of the H-1 nmr spectrum of 2-methylpentane, explaining and analyzing spin spin line splitting in the H-1 nmr spectrum, how to construct the diagram of the H-1 nmr spectrum of 2-methylpentane, how to work out the number of chemically different protons in the structure of the 2-methylpentane organic molecule, how to analyse the chemical shifts in the hydrogen-1 H-1 proton NMR spectrum of 2-methylpentane using the n+1 rule to explain the spin - spin coupling ine splitting in the proton nmr spectrum of 2-methylpentane deducing the nature of the protons from the chemical shifts ppm in the H-1 nmr spectrum of 2-methylpentane examining the 1H nmr spectrum of  2-methylpentane analysing the 1-H nmr spectrum of 2-methylpentane how do you sketch and interpret the H-1 NMR spectrum of 2-methylpentane interpreting interpretation of the H-1 proton NMR spectrum of 2-methylpentane: isohexane Molecular structure diagram of the proton NMR diagram for the 1H NMR spectrum of 2-methylpentane. The proton ratio in the 1H NMR spectrum of 2-methylpentane. Deducing the number of different chemical environments of the protons in the 2-methylpentane molecule from the 1H chemical shifts in the hydrogen-1 NMR spectrum of 2-methylpentane. Analysing the high resolution 1H NMR spectrum of 2-methylpentane. Analysing the low resolution 1H NMR spectrum of 2-methylpentane. You may need to know the relative molecular mass of 2-methylpentane to deduce the molecular formula from the proton ratio of the 1H NMR spectrum of 2-methylpentane. Revision notes on the proton NMR spectrum of 2-methylpentane. Matching and deducing the structure of the 2-methylpentane molecule from its hydrogen-1 NMR spectrum. Proton NMR spectroscopy of  aliphatic alkanes, 1H NMR spectra of 2-methylpentane, an isomer of molecular formula C6H14 How do you interpret the H-1 NMR spectrum of 2-methylpentane How to interpret the H-1 NMR spectrum of 2-methylpentane Explanatory diagram of the chemical shifts of the 1H H-1 proton NMR spectrum of the 2-methylpentane molecule in terms of its molecular structure. Listing data of all the chemical shift peaks in ppm in the proton NMR spectrum of 2-methylpentane. How to explain the H-1 NMR spectrum of 2-methylpentane. The chemical shifts and  integrated values of the proton ratios in the 1-H NMR spectrum of the 2-methylpentane molecule. How to work out the molecular structure of the 2-methylpentane molecule from its proton NMR spectrum. The uses and distinctive features of the proton NMR spectrum of the 2-methylpentane molecule explained. What does the H-1 proton NMR spectrum chemical shifts tell us about the structure and properties of the 2-methylpentane molecule? explaining the spin-spin proton coupling effects in the 1H NMR spectrum of 2-methylpentane. diagram explaining the proton splitting pattern produced from the n+1 rule and the theoretical ratio of chemical shift and values of intensities for the proton NMR spectrum lines of 2-methylpentane


Links associated with 2-methylpentane

The chemistry of ALKANES revision notes INDEX

The infrared spectrum of 2-methylpentane

The mass spectrum of 2-methylpentane

The C-13 NMR spectrum of 2-methylpentane

H-1 proton NMR spectroscopy index  (Please read 8 points at the top of the 1H NMR index page)

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All Advanced Organic Chemistry Notes

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