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Criteria for Aromaticity and the Hückel 4n + 2 Rule01:20

Criteria for Aromaticity and the Hückel 4n + 2 Rule

Like benzene, cyclobutadiene and cyclooctatetraene are cyclic compounds with alternate single and double bonds. However, their chemical behavior differs from benzene, as they are unstable and not aromatic. So, what are the structural characteristics of unsaturated compounds categorized as aromatic?
For the first time, Eric Hückel, a German chemical physicist, derived a set of structural features for a compound to be classified as aromatic. This is now known as Hückel’s rule or the 4n + 2 rule.
Five-Membered Heterocyclic Aromatic Compounds: Overview01:13

Five-Membered Heterocyclic Aromatic Compounds: Overview

Heterocyclic aromatic compounds are cyclic compounds that are aromatic and have one or more heteroatoms—atoms other than carbon, in the ring. Depending upon the number of atoms present in the ring, they can be either five or six-membered. Examples of five-membered heterocyclic aromatic compounds include pyrrole, furan, thiophene, and imidazole. Pyrrole consists of one nitrogen atom having one lone pair of electrons. Furan and thiophene have one oxygen and one sulfur heteroatom, respectively.
ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH301:11

ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH3

All ortho–para directors, excluding halogens, are activating groups. These groups donate electrons to the ring, making the ring carbons electron-rich. Consequently, the reactivity of the aromatic ring towards electrophilic substitution increases. For instance, the nitration of anisole is about 10,000 times faster than the nitration of benzene. The electron-donating effect of the methoxy group in anisole activates the ortho and para positions on the ring and stabilizes the corresponding...
Frost Circles for Different Conjugated Systems01:18

Frost Circles for Different Conjugated Systems

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.
Aromatic Hydrocarbon Cations: Structural Overview01:18

Aromatic Hydrocarbon Cations: Structural Overview

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 with both...
UV–Vis Spectroscopy: Woodward–Fieser Rules01:29

UV–Vis Spectroscopy: Woodward–Fieser Rules

UV–Visible absorption spectra of conjugated dienes arise from the lowest energy π → π* transitions. The light-absorbing part of the molecule is called the chromophore, and the substituents directly attached to the chromophore are called auxochromes. A strong correlation exists between the absorption maxima, λmax, and the structure of a conjugated π system. The Woodward–Fieser rules predict the value of λmax for a given structure by adding the contributions...

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Pas de Deux of an NO Couple: Synchronous Photoswitching from a Double-Linear to a Double-Bent Ru(NO)<sub>2</sub> Core under Nitrosyl Charge Conservation.

Angewandte Chemie (International ed. in English)·2022
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Bent and Linear {CoNO}<sup>8</sup> Entities: Structure and Bonding in a Prototypic Class of Nitrosyls.

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Not Guilty on Every Count: The "Non-Innocent" Nitrosyl Ligand in the Framework of IUPAC's Oxidation-State Formalism.

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Related Experiment Video

Updated: Jul 10, 2026

Qualitative Identification of Carboxylic Acids, Boronic Acids, and Amines Using Cruciform Fluorophores
09:46

Qualitative Identification of Carboxylic Acids, Boronic Acids, and Amines Using Cruciform Fluorophores

Published on: August 19, 2013

[Fe(H2 O)5 (NO)]2+ , the "Brown-Ring" Chromophore.

Georg Monsch1, Peter Klüfers1

  • 1Department Chemie der Ludwig-Maximilians-Universität, Butenandtstrasse 5-13, 81377, München, Germany.

Angewandte Chemie (International Ed. in English)
|April 25, 2019
PubMed
Summary

Researchers synthesized the unstable "brown-ring" ion, [Fe(H2O)5(NO)]2+, enabling experimental analysis of its unique bonding. This study reveals novel π-interactions that challenge traditional oxidation state concepts in inorganic chemistry.

Keywords:
ab initio calculationscoordination chemistrydonor-acceptor systemsiron complexesnitrosylsoxidation states

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Area of Science:

  • Inorganic Chemistry
  • Coordination Chemistry
  • Spectroscopy

Background:

  • The "brown-ring" ion, [Fe(H2O)5(NO)]2+, is a historically significant but poorly characterized species.
  • Previous research has been limited by the instability and inability to isolate this complex.
  • Understanding the bonding in [Fe(H2O)5(NO)]2+ is crucial for advancing coordination chemistry principles.

Purpose of the Study:

  • To synthesize and isolate a stable salt of the "brown-ring" ion, [Fe(H2O)5(NO)]2+.
  • To experimentally investigate the unique electronic structure and bonding of the [Fe(H2O)5(NO)]2+ complex.
  • To challenge and refine the concept of oxidation states in transition metal nitrosyl complexes.

Main Methods:

  • Crystallization of a salt containing the [Fe(H2O)5(NO)]2+ ion.
  • Experimental bonding analysis using advanced spectroscopic and diffraction techniques.
  • Computational modeling to support the interpretation of experimental results.

Main Results:

  • Successful synthesis and isolation of crystalline [Fe(H2O)5(NO)]2+ salt.
  • Identification of two distinct, spin-polarized π-interactions contributing to the Fe-NO bond.
  • Experimental evidence suggests the Fe-NO bond is not adequately described by traditional oxidation state formalism.

Conclusions:

  • The isolation of [Fe(H2O)5(NO)]2+ allows for unprecedented experimental study of its bonding.
  • The observed π-interactions provide a new perspective on metal-ligand bonding in nitrosyl complexes.
  • This work necessitates a re-evaluation of the 'oxidation state' concept for such species.