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Updated: Aug 26, 2026

Nitrogen Compound Characterization in Fuels by Multidimensional Gas Chromatography
Published on: May 15, 2020
High-pressure stabilization and bonding characteristics of three La-N compounds with polymeric nitrogen motifs
Siyu Liu1, Shuli Wei1, Xinlei Gao1
1School of Physics and Optoelectronic Engineering, Shandong University of Technology, Zibo 250049, People's Republic of China.
Abstract:
Polynitrides represent promising candidates for high-energy-density materials but remain notoriously unstable under ambient conditions. Introducing lanthanum (La), which possesses delocalized valence electrons, offers an effective route to stabilize polymeric nitrogen networks through charge transfer. Using the CALYPSO structure searching method combined with first-principles calculations, we systematically explored the La-N system over a pressure range of 0-200 GPa. Three unprecedented thermodynamically stable polynitrides were predicted:C2/c-LaN7(stable within 160-200 GPa),P63/mcm-LaN9(stable within 53-62 GPa), andC2/m-LaN10(stable within 50-59 GPa). Notably,C2/c-LaN7marks the first identified La-N compound with a 1:7 stoichiometry, andP63/mcm-LaN9exhibits a higher energy density than the previously reportedPm-LaN9phase, andC2/m-LaN10represents the first thermodynamically stable lanthanum decanitride.C2/c-LaN7displays desirable energetic performance with volumetric energy density superior to that of TNT. Moreover, all three phases exhibit detonation velocity and pressure superior to those of TNT, while AIMD simulations confirm thatC2/c-LaN7andC2/m-LaN10maintain structural integrity up to 900 K. This work expands the high-pressure phase diagram of the La-N system and provides fundamental insights for the rational design and synthesis of thermally stable polynitrides under extreme conditions.
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