Strong electron-phonon coupling and predicted highest known of MXenes revealed in 2H-MoN under biaxial stress
arXiv:2207.10863 · doi:10.1016/j.physb.2024.416551
Abstract
This letter reports the unexpectedly strong electron-phonon coupling (EPC) and the highest record ( 38 K) among the MXenes revealed in the 2H-MoN under biaxial stress. At first, its excellent mechanical properties are demonstrated with ideal strength of 37 GPa and elastic modulus of 438 GPa. Subsequently, EPC and corresponding are elucidated upon the dynamically stable range of strain. For strain-free 2H-MoN, the EPC constant () and are 1.3 and 22.7 K, respectively. This is higher than those of 2H-MoC (4.3 K), 1T-MoN (16.8 K), and other pristine MXenes. The material exhibits remarkable enhancement in and when subject to compressive and tensile stresses. The obvious strong EPC with over 2.0 occurs at strains of -4%, -2.5%, and 5%, yielding s of 37.8, 35.4, and 28.9 K, respectively. Our findings suggest that the strain-dependent feature and energy levels of electronic bands play an essential role in enhancing EPC. Moreover, the stronger EPC in MoN compared with MoC is clarified based on lattice vibrations. Therefore, this work paves a practical way for designing 2D superconducting materials using tuning atomic recipes and strain-dependent engineering.
6 pages, 4 Figures
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