First-Principles Calculation of Superconducting in Superhard B-C-N Metals
arXiv:2410.02104 · doi:10.1103/k8ss-6lpq
Abstract
We perform first-principles electron-phonon calculations to evaluate the superconducting transition temperature for ternary superhard metals BCN and BCN. An ambient-pressure of K and K is obtained respectively for BCN and BCN from the Eliashberg gap equations. The relatively high of these compounds is due in part to their high Debye temperatures associated with superhardness. The materials under study are potentially synthesizable, as their formation energies are comparable to those of other recently synthesized superhard B-C-N compounds. Therefore, studying superhard metals could hold the promise of realizing new higher- superconductors at ambient pressure.
8 pages, 4 figures
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