Advanced Organic Chemistry: The 13C NMR spectrum of cyclohexene cyclo-C6H10

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Interpreting and explaining the Carbon-13 13C NMR spectrum of cyclohexene

[Author © Dr Phil Brown GRIC, 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 spectrometry - analysing the 13C NMR spectra of cyclohexene [spectra page updated RE-EDIT]

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 C-13 NMR spectroscopy index

See also Isomers of molecular formula C6H10 (including some NMR spectra data)


Introductory note on the 13C NMR spectrum of cyclohexene

Students and teachers please note that my explanation of the carbon-13 NMR spectrum of cyclohexene is designed for advanced, but pre-university, chemistry courses.

The description does not involve the chemical shift δ spin-spin coupling effects for cyclohexene and the relative size of the carbon-13 NMR shifts does not give the ratio of the carbon atoms in the different non-equivalent chemical environments of the cyclohexene molecule.

The most common solvent used for investigating the 13C NMR spectrum of compounds like cyclohexene, is CDCl3 and other deuterated solvents.

13C nmr spectrum of cyclohexene C6H10 analysis of chemical shifts ppm interpretation of C-13 chemical shifts ppm of cyclohexene C13 carbon-13 nmr doc brown's advanced organic chemistry revision notes 

TMS is the acronym for tetramethylsilane, formula Si(CH3)4, whose 13C atoms are arbitrarily given a chemical shift of 0.0 ppm. This is the 'standard' in 13C NMR spectroscopy and all other 13C resonances, called chemical shifts, are measured with respect to the TMS, and depend on the individual (electronic) chemical environment of the 13C atoms in an organic molecule - cyclohexene here.

cyclohexene , alkenes structure and naming (c) doc b , alkenes structure and naming (c) doc b  ,  alkenes structure and naming (c) doc b

The molecular structure and naming of alkenes

Interpreting the C-13 NMR spectrum of cyclohexene

As you can see from the diagram above there are 3 different 13C chemical shift lines in the C-13 NMR spectrum of cyclohexene indicating 3 different chemical environments of the 10 carbon atoms of cyclohexene.

13C chemical shifts δ (a) to (c) on the C-13 NMR spectrum diagram for cyclohexene.

(a)  C atoms : 13C NMR chemical shift δ of 22.8 ppm

The 13C NMR resonance for the 2 x equivalent C atoms furthest from the C=C bond.

(b)  C atoms : 13C NMR chemical shift δ of 25.3 ppm

The 13C NMR resonance for the 2 x equivalent C atoms nearest to the C=C bond.

(c)  C atoms : 13C NMR chemical shift δ of 127.3 ppm

The  13C NMR resonance for the 2 x equivalent C atoms of the actual C=C bond itself.

The presence of the pi electron cloud produces the largest downfield chemical shift for the C=C bond carbons compared to the other two pairs of carbon atoms.

The carbon-13 NMR spectra provides direct evidence of 3 different carbon atom environments for the 10 carbon atoms in the cyclohexene molecule, deduced from the presence of 3 different 13C NMR chemical shifts (ppm).


Key points about the 13C NMR spectrum of cyclohexene

Key Features of the ¹³C NMR Spectrum of Cyclohexene

  • Molecular formula: C6H10 → six carbons total.
  • Distinct carbon environments: Four signals due to symmetry in the ring.
  • Chemical shift ranges:
    • Alkene carbons (sp²): ~125–135 ppm.
    • Allylic carbons (sp³ adjacent to C=C): ~20–30 ppm.
    • Remaining saturated carbons (sp³ further from C=C): ~25–35 ppm.
  • Decoupled spectrum: In routine exam spectra, proton decoupling is used → signals appear as unsplit singlets (no multiplicity).
  • No carbonyl carbons: Absence of signals >160 ppm confirms no C=O group.

Table of ¹³C Chemical Shifts and Origins for the 13C NMR spectrum of cyclohexene

δ (ppm) range Carbon type Origin / Explanation
~125–135, 127.3 C=C carbons (2 signals) Two vinylic carbons of the double bond, deshielded by π electrons
~25–30, 25.3 Allylic CH2 carbons Carbons directly adjacent to the double bond, slightly deshielded
~25–35, 22.8 Remaining CH2 carbons Carbons further from the double bond, more shielded

Spectra data source https://sdbs.db.aist.go.jp/Disclaimer.aspx for 13C δ ppm


Common Student Misconceptions

  • Expecting six signals: Students often forget symmetry reduces the number of distinct carbons to three.
  • Confusing alkene carbons with aromatic carbons: Aromatics appear further downfield (~120–150 ppm), but cyclohexene is not aromatic.
  • Thinking signals should be split: In exam spectra, ¹³C is proton‑decoupled, so signals are singlets.
  • Misplacing allylic carbons: Allylic carbons are slightly downfield compared to normal alkyl carbons, but not as far as vinylic carbons.

Exam Revision Tips

  • Count signals first: Four signals = symmetry in cyclohexene.
  • Identify vinylic carbons (~125–135 ppm): Diagnostic of alkenes.
  • Check allylic carbons (~20–30 ppm): Slightly deshielded compared to normal alkyl.
  • Remember decoupling: All signals are singlets in exam spectra.
  • Compare with cyclohexane: Cyclohexane shows only sp³ carbons (~25 ppm), no downfield vinylic signals.
  • Exam technique: When asked to assign signals, state ppm, carbon type, and reasoning (e.g., “Signal at ~130 ppm corresponds to vinylic carbons of the C=C bond”).
  • Cross‑board consistency: All exam boards (AQA, Edexcel, OCR, WJEC, CCEA, CIE, IB, AP) expect recognition of signal count, approximate ranges, and diagnostic alkene carbons.

Final Comments

For A level and AP exams, focus on:

  • Three signals only (due to symmetry).
  • Vinylic carbons at ~125–135 ppm.
  • Allylic carbons at ~20–30 ppm.
  • Remaining saturated carbons at ~25–35 ppm.
  • Decoupled spectrum = unsplit singlets.

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Links associated with cyclohexene

The infrared spectrum of cyclohexene

The mass spectrum of cyclohexene

The H-1 NMR spectrum of cyclohexene

Isomers of molecular formula C6H10 (Mr = 82)

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