Competitor for diamonds

Frameworks of CN₄ tetrahedra in the crystal structures of novel carbon nitrides making them ultraincompressible and superhard: hP126-C₃N₄ (right).
(c) Uni Bayreuth

Bayreuth scientists produce superhard multifunctional carbon nitrides.

In a groundbreaking piece of research, scientists have synthesised long-sought carbon nitrogen compounds and unlocked the potential of carbon nitrides as a new class of superhard multifunctional materials that could rival diamond. The work has now been published in the journal Advanced Materials.

Since 1989, when a prediction of a carbon-nitrogen compound C₃N₄ with exceptional mechanical properties, potentially surpassing diamond in hardness was reported in the journal Science, researchers worldwide have been working on this topic. The breakthrough has now been achieved by an international team of high-pressure scientists from the University of Bayreuth and the University of Edinburgh. Frameworks of CN₄ tetrahedra in the crystal structures of novel carbon nitrides making them ultraincompressible and superhard: tI14-C₃N₄
Frameworks of CN₄ tetrahedra in the crystal structures of novel carbon nitrides making them ultraincompressible and superhard: tI14-C₃N₄. (c) Uni Bayreuth

They subjected various carbon-nitrogen precursors to incredibly high pressures between 70 and 135 gigapascals (GPa), with 100 GPa corresponding to 1,000,000 times the atmospheric pressure, and heated them above 2000 K in diamond anvil cells. The samples were then characterized by single-crystal X-ray diffraction at three particle accelerators: the European Synchrotron Research Facility (ESRF, France), the Deutsches Elektronen-Synchrotron (DESY, Germany) and the Advanced Photon Source (APS, United States). The results revealed four carbon nitrides with the compositions CN, CN₂, and C₃N₄, and structures of different complexity. The crystal structures of the C₃N₄ allotropes are built of frameworks of corner-sharing CN₄ tetrahedra, that is a key to their superior mechanical properties – ultraincompressibility (incompressibility manifests when the volume of a body remains almost constant despite applied pressure) and superhardness – experimentally established in this work. The fact that the high-pressure C₃N₄ carbon nitrides make imprints on a diamond surface give evidence of their hardness comparable to diamond itself.

“The carbon nitrides synthesized in this work are expected to exhibit multiple exceptional functionalities besides their mechanical properties, with a potential to be engineering materials in the same category as diamond, but unlike diamond, they can be easily doped, what is always an issue with diamond electronics,” says Professor Natalia Dubrovinskaia of the Laboratory of Crystallography at the University of Bayreuth, a senior author of the research. Physical properties investigations, both experimental and theoretical, the latter conducted by the scientists of the University of Linköping, Sweden, showed that these strongly covalently bonded materials are not only ultra-incompressible and superhard, but also possess high energy density, piezoelectric, photoluminescent, and nonlinear optical properties.

Remarkable is also that all four high-pressure carbon nitrides can be recovered to ambient pressure and temperature. “The recovery of complex materials synthesized above 100 GPa is a previously unprecedented case, thus opening up new perspectives for high-pressure materials science in general”, says Professor Leonid Dubrovinsky of the Bavarian Institute for Experimental Geochemistry and Geophysics at the University of Bayreuth, the leading author of the research.

Wissenschaftliche Ansprechpartner:

Prof. Dr. Dr. h. c. Natalia Dubrovinskaia
Laboratory of Crystallography University of Bayreuth
Materials Physics and Technology under Extreme Conditions
D-95440 Bayreuth
Phone: +49 (0) 921 553880
E-mail: natalia.dubrovinskaia@uni-bayreuth.de

Prof. Dr. Dr. h. c. Leonid Dubrovinsky
Bavarian Geoinstitute
University of Bayreuth
D-95440 Bayreuth
Phone: +49 (0) 921 553736
E-mail: leonid.dubrovinsky@uni-bayreuth.de

Originalpublikation:

Synthesis of Ultra-Incompressible and Recoverable Carbon Nitrides Featuring CN₄ Tetrahedra

Dominique Laniel, Florian Trybel, Andrey Aslandukov, Saiana Khandarkhaeva, Timofey Fedotenko, Yuqing Yin, Nobuyoshi Miyajima, Ferenc Tasnádi, Alena V. Ponomareva, Nityasagar Jena, Fariia Iasmin Akbar, Bjoern Winkler, Adrien Néri, Stella Chariton, Vitali Prakapenka, Victor Milman, Wolfgang Schnick, Alexander N. Rudenko, Mikhail I. Katsnelson, Igor A. Abrikosov, Leonid Dubrovinsky, Natalia Dubrovinskaia

Advanced Materials, 2023
DOI : https://onlinelibrary.wiley.com/doi/10.1002/adma.202308030

https://www.uni-bayreuth.de/

Media Contact

Jennifer Opel Pressestelle

All latest news from the category: Materials Sciences

Materials management deals with the research, development, manufacturing and processing of raw and industrial materials. Key aspects here are biological and medical issues, which play an increasingly important role in this field.

innovations-report offers in-depth articles related to the development and application of materials and the structure and properties of new materials.

Back to home

Comments (0)

Write a comment

Newest articles

Pinpointing hydrogen isotopes in titanium hydride nanofilms

Although it is the smallest and lightest atom, hydrogen can have a big impact by infiltrating other materials and affecting their properties, such as superconductivity and metal-insulator-transitions. Now, researchers from…

A new way of entangling light and sound

For a wide variety of emerging quantum technologies, such as secure quantum communications and quantum computing, quantum entanglement is a prerequisite. Scientists at the Max-Planck-Institute for the Science of Light…

Telescope for NASA’s Roman Mission complete, delivered to Goddard

NASA’s Nancy Grace Roman Space Telescope is one giant step closer to unlocking the mysteries of the universe. The mission has now received its final major delivery: the Optical Telescope…