For the first time, researchers at the University of Bayreuth have succeeded in synthesising a compound that contains aromatic rings of nitrogen atoms. The newly synthesised hexazine ring bears a striking resemblance to benzene, the aromatic carbon compound that is omnipresent in nature.
The crystal structure of the compound K₉N₅₆.
(Source: Dominique Laniel)
Although the term “aromatic” originally concerned odour, today its use in chemistry is restricted to compounds that have particular electronic, structural, or chemical properties. The unique stability of these compounds is referred to as aromaticity. Aromatic compounds play an important role in chemistry and biology as well as in numerous branches of industry. Although aromaticity was initially thought to be exclusive to carbon cycles, it has since been shown that numerous systems composed of carbon heterocycles and non-carbon cycles can have an aromatic character. Nitrogen aromaticity, however, has far been restricted to the [N5]⁻ pentazolate anion.
International collaboration, involving the Laboratory of Crystallography and the Bavarian Research Institute of Experimental Geochemistry & Geophysics (BGI) at the University of Bayreuth, has now led to a considerable breakthrough. Under extreme pressure and temperature conditions, the complex compound K9N56 was synthesized, which contains [N6]4- hexazine rings. The structure of K9N56 is composed of a complex arrangement of [N6]4- and [N5]- rings as well as neutral nitrogen dimers. The researchers found that the structure of the [N6]4- hexazine ring conforms to the rule for aromaticity of chemical compounds named after physical chemist Erich Hückel: the ring is cyclic, planar and has (4n + 2) π-electrons (10π system).
“This is the first time that a ring consisting of six nitrogen atoms has been synthesized that follows the Hückel rule for aromaticity. Its aromatic character is further supported by bond-length considerations and by calculations of the electronic charge density. The newly synthesized [N6]4- hexazine ring has a striking similarity to benzene, the aromatic carbon compound which is omnipresent in nature,” says Prof. Dr. Dr. h.c. Natalia Dubrovinskaia of the Laboratory of Crystallography. “This study provides a striking example contradicting the trope of structural simplicity at high densities. We hope that this synthesis of the aromatic hexazine anion, together with that of the aromatic [N5]- pentazole anion, can stimulate further exploration of nitrogen chemistry in the search of novel nitrogen-based technological materials,” adds Prof. Dr. Dr. h.c. Leonid Dubrovinsky of the BGI.
The complex compound K9N56 was formed under unusual conditions: Potassium azide (KN3) and molecular nitrogen (N2) were compressed under a pressure more than 400,000 times higher than the pressure of the Earth's atmosphere and heated to 2,000°C with high-power lasers. The next step was to elucidate the internal structure of this new compound. To do this, the samples were exposed to an intense X-ray beam at two particle accelerators, the Petra III X-ray source at the German Electron Synchrotron (Desy) in Hamburg and the European Synchrotron Radiation Facility (ESRF-EBS) in Grenoble.
“We were very surprised about the atomic arrangement of the compound K9N56: it is of a complexity almost never observed for solids produced at such high pressures. We found that it is composed of a repeating arrangement of 520 atoms: 72 K and 448 N. Although we could immediately see that the planar [N6]4- rings were fulfilling the basic requirements for aromaticity, we applied advanced calculations methods to verify this,” reports Dr. Dominique Laniel of the University of Edinburgh, first author of the new paper.
The necessary computational analyses were carried out by Dr. Florian Trybel and his collaborators at Linköping University. The calculations confirmed the stability of K9N56 and provided further insight into the aromaticity of the [N6]4- hexazine ring.
References: Dominique Laniel et al.: Aromatic hexazine [N₆]⁴⁻ anion featured in complex structure of the high-pressure potassium nitrogen compound K₉N₅₆. Nature Chemistry (2023), DOI: https://doi.org/10.1038/s41557-023-01148-7
Date: 08.12.2025
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