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Aromatic Hydrocarbon Anions: Structural Overview01:18

Aromatic Hydrocarbon Anions: Structural Overview

3.1K
Neutral hydrocarbons like cyclopentadiene with an odd number of carbon atoms and one intervening CH2 group in the ring are not aromatic. Cyclopentadiene with 4 π electrons does not satisfy the 4n + 2 π electron rule. Additionally, the intervening CH2 group is sp3 hybridized and lacks a vacant p orbital, thereby interrupting the overlap of p orbitals in a continuous manner and preventing the delocalization of π electrons throughout the ring.
Due to the absence of continuous...
3.1K
Aromatic Hydrocarbon Cations: Structural Overview01:18

Aromatic Hydrocarbon Cations: Structural Overview

3.2K
Cycloheptatriene is a neutral monocyclic unsaturated hydrocarbon that consists of an odd number of carbon atoms and an intervening sp3 carbon in the ring. The three double bonds in the ring correspond to 6 π electrons, which is a Huckel number, and therefore satisfies the criteria of 4n + 2 π electrons. However, the intervening sp3 carbon disrupts the continuous overlap of p orbitals. As a result, cycloheptatriene is not aromatic.
Removing one hydrogen from the intervening CH2 group...
3.2K
Structure of Benzene: Molecular Orbital Model01:18

Structure of Benzene: Molecular Orbital Model

10.4K
According to the molecular orbital (MO) model, benzene has a planar structure with a regular hexagon of six sp2 hybridized carbons. As shown in Figure 1, each carbon is bonded to three other atoms with C–C–C and H–C–C bond angles of 120°. The C–H bond length is 109 pm, and the C–C bond length is 139 pm which is midway between the single bond length of sp3 hybridized carbons (154 pm) and sp2 hybridized carbons (133 pm).
10.4K
π Electron Effects on Chemical Shift: Aromatic and Antiaromatic Compounds01:14

π Electron Effects on Chemical Shift: Aromatic and Antiaromatic Compounds

1.4K
In aromatic compounds, such as benzene, the circulation of (4n + 2) π-electrons sets up a diamagnetic or diatropic ring current around the perimeter of the molecule. This current induces a magnetic field that opposes the external field inside the ring and reinforces it on the outside. The protons in benzene are deshielded and exhibit high chemical shifts in the range 6.5–8.5 ppm. The shielding effect at the center of the ring is evident in complex aromatic molecules, such as...
1.4K
Frost Circles for Different Conjugated Systems01:18

Frost Circles for Different Conjugated Systems

3.1K
The inscribed polygon method is consistent with Hückel’s 4n + 2 rule and helps to learn whether the given cyclic compound is aromatic or not. The compound is stable and aromatic if every bonding molecular orbital (MO) is completely filled with a pair of electrons. However, if the non-bonding or antibonding orbitals are filled with electrons, the compound is unstable and not aromatic. Consider the Frost circle diagrams for cycloalkenes containing 4 to 8 carbons.
3.1K
IR Absorption Frequency: Delocalization01:04

IR Absorption Frequency: Delocalization

982
Electron delocalization refers to the distribution of electrons across multiple atoms within a molecule rather than being confined to a single atom or bond. This phenomenon is common in systems with conjugated bonds—structures where alternating single and double bonds allow π-electrons to move freely across the network. The movement of electrons stabilizes the molecule and can affect various chemical properties, including vibrational frequencies observed in IR spectroscopy.
In IR...
982

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Updated: Oct 14, 2025

Preparation of a Corannulene-functionalized Hexahelicene by CopperI-catalyzed Alkyne-azide Cycloaddition of Nonplanar Polyaromatic Units
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Preparation of a Corannulene-functionalized Hexahelicene by CopperI-catalyzed Alkyne-azide Cycloaddition of Nonplanar Polyaromatic Units

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Visualizing electron delocalization in contorted polycyclic aromatic hydrocarbons.

Albert Artigas1, Denis Hagebaum-Reignier1, Yannick Carissan1

  • 1Aix Marseille Université, CNRS, Centrale Marseille, ISM2 13397 Marseille France yannick.carissan@univ-amu.fr yoann.coquerel@univ-amu.fr.

Chemical Science
|November 8, 2021
PubMed
Summary

Electron delocalization in contorted polycyclic aromatic hydrocarbons (PAHs) was visualized using 3D isotropic magnetic shielding (IMS) maps. These maps reveal aromaticity and delocalization patterns, offering insights into molecular electronic structure.

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Area of Science:

  • * Organic Chemistry
  • * Computational Chemistry
  • * Molecular Modeling

Background:

  • * Polycyclic aromatic hydrocarbons (PAHs) are crucial in various chemical and physical processes.
  • * Understanding electron delocalization is key to predicting PAH properties.
  • * Contorted PAHs present unique structural challenges for aromaticity analysis.

Purpose of the Study:

  • * To develop and apply a novel method for visualizing electron delocalization in contorted PAHs.
  • * To quantitatively evaluate the aromatic, non-aromatic, and antiaromatic character of conjugated circuits.
  • * To compare delocalization patterns in different contorted PAH structures, including diastereomers.

Main Methods:

  • * Construction of 3D isotropic magnetic shielding (IMS) contour maps.
  • * Utilization of pseudo-van der Waals surfaces for map generation.
  • * Analysis of electron delocalization patterns and aromaticity indicators.

Main Results:

  • * 3D IMS contour maps provide intuitive and quantitative evaluation of electron delocalization.
  • * Maps resemble the Clar π-sextet model, aiding in aromaticity assessment.
  • * Visualization of distinct delocalization differences between PAH faces and diastereomers.
  • * Identification of characteristic delocalization patterns in π-extended contorted PAHs.

Conclusions:

  • * 3D IMS mapping is an effective tool for studying electron delocalization in complex PAHs.
  • * The method elucidates local and global aromaticity patterns in contorted systems.
  • * This approach offers valuable insights into the electronic structure and properties of PAHs.