Research paperComputational DFTComputed PhononTheoreticalTwo-gap superconductivity in a Janus MoSeLi monolayerJakkapat Seeyangnok, Udomsilp Pinsook, Greame John AcklandarXiv preprint·2024·10.48550/arxiv.2412.08119·arXiv:2412.08119AbstractTwo-dimensional (2D) lithium-decorated materials have emerged as a significant area of study since the prediction of superconductivity in lithium-decorated graphene at temperatures around 8.1 K. Following earlier studies, this paper focuses on the hexagonal Janus MoSeLi monolayer as a promising candidate for Li-decorated 2D materials. The study reports that lithium substitution on a selenium layer of MoSe₂ can produce a hexagonal Janus MoSeLi monolayer with metallic behavior and potential phonon-mediated superconductivity with a critical temperature Tc of 4.5 K. By solving the anisotropic gap equations derived from Migdal-Eliashberg theory, the paper finds two-gap superconductivity in Janus MoSeLi.Read more
2H Janus MoSeLi monolayer modeled in trigonal space group P3m1 (No. 156) with Li substitution on one chalcogen side.3 characterizations4 properties2 figuresSimulated Supercell DftMoSeLiStudied MaterialExpand
Research paperComputational DFTComputed PhononTheoreticalTwo-gap superconductivity in a Janus MoSeLi monolayerJakkapat Seeyangnok, Udomsilp Pinsook, Greame John AcklandarXiv preprint·2024·10.48550/arxiv.2412.08119·arXiv:2412.08119AbstractTwo-dimensional (2D) lithium-decorated materials have emerged as a significant area of study since the prediction of superconductivity in lithium-decorated graphene at temperatures around 8.1 K. Following earlier studies, this paper focuses on the hexagonal Janus MoSeLi monolayer as a promising candidate for Li-decorated 2D materials. The study reports that lithium substitution on a selenium layer of MoSe₂ can produce a hexagonal Janus MoSeLi monolayer with metallic behavior and potential phonon-mediated superconductivity with a critical temperature Tc of 4.5 K. By solving the anisotropic gap equations derived from Migdal-Eliashberg theory, the paper finds two-gap superconductivity in Janus MoSeLi.Read more
2H Janus MoSeLi monolayer modeled in trigonal space group P3m1 (No. 156) with Li substitution on one chalcogen side.3 characterizations4 properties2 figuresSimulated Supercell DftMoSeLiStudied MaterialExpand
Research paperComputational DFTComputed PhononTheoreticalTwo-gap superconductivity in a Janus MoSeLi monolayerJakkapat Seeyangnok, Udomsilp Pinsook, Greame John AcklandarXiv preprint·2024·10.48550/arxiv.2412.08119·arXiv:2412.08119AbstractTwo-dimensional (2D) lithium-decorated materials have emerged as a significant area of study since the prediction of superconductivity in lithium-decorated graphene at temperatures around 8.1 K. Following earlier studies, this paper focuses on the hexagonal Janus MoSeLi monolayer as a promising candidate for Li-decorated 2D materials. The study reports that lithium substitution on a selenium layer of MoSe₂ can produce a hexagonal Janus MoSeLi monolayer with metallic behavior and potential phonon-mediated superconductivity with a critical temperature Tc of 4.5 K. By solving the anisotropic gap equations derived from Migdal-Eliashberg theory, the paper finds two-gap superconductivity in Janus MoSeLi.Read more
2H Janus MoSeLi monolayer modeled in trigonal space group P3m1 (No. 156) with Li substitution on one chalcogen side.3 characterizations4 properties2 figuresSimulated Supercell DftMoSeLiStudied MaterialExpand
Research paperComputational DFTComputed PhononTheoreticalTwo-gap superconductivity in a Janus MoSeLi monolayerJakkapat Seeyangnok, Udomsilp Pinsook, Greame John AcklandarXiv preprint·2024·10.48550/arxiv.2412.08119·arXiv:2412.08119AbstractTwo-dimensional (2D) lithium-decorated materials have emerged as a significant area of study since the prediction of superconductivity in lithium-decorated graphene at temperatures around 8.1 K. Following earlier studies, this paper focuses on the hexagonal Janus MoSeLi monolayer as a promising candidate for Li-decorated 2D materials. The study reports that lithium substitution on a selenium layer of MoSe₂ can produce a hexagonal Janus MoSeLi monolayer with metallic behavior and potential phonon-mediated superconductivity with a critical temperature Tc of 4.5 K. By solving the anisotropic gap equations derived from Migdal-Eliashberg theory, the paper finds two-gap superconductivity in Janus MoSeLi.Read more
2H Janus MoSeLi monolayer modeled in trigonal space group P3m1 (No. 156) with Li substitution on one chalcogen side.3 characterizations4 properties2 figuresSimulated Supercell DftMoSeLiStudied MaterialExpand