Please use this identifier to cite or link to this item: https://has.hcu.ac.th/jspui/handle/123456789/2059
Title: Thermodynamic and dynamic stability of NaLiC : Exploring superconductivity in a layered hexagonal compound through first-principles calculations
Authors: Prayoonsak Pluengphon
Wiwittawin Sukmas
Prutthipong Tsuppayakorn-aek
Komsilp Kotmool
Aparporn Sakulkalavek
Burapat Inceesungvorn
Thiti Bovornratanaraks
Wei Luo
ประยูรศักดิ์ เปลื้องผล
วิวิธวินท์ สุขมาศ
พฤทธิพงษ์ ทรัพยากรเอก
คมศิลป์ โคตมูล
อาภาภรณ์ สกุลการะเวก
บูรภัทร์ อินทรีย์สังวร
ธิติ บวรรัตนารักษ์
Huachiew Chalermprakiet University. Faculty of Science and Technology. Division of Physical Science
Chulalongkorn University. Metallurgy and Materials Science Research Institute
Chulalongkorn University. Faculty of Science. Department of Physics
King Mongkut’s Institute of Technology Ladkrabang. College of Advanced Manufacturing Innovation
King Mongkut’s Institute of Technology Ladkrabang. School of Science. Department of Physics
Chiang Mai University. Faculty of Science. Center of Excellence in Materials Science and Technology
Chulalongkorn University. Faculty of Science. Department of Physics
Uppsala University. Department of Physics and Astronomy. Materials Theory Division
Keywords: ฟิล์มบาง
Thin films
ตัวนำไฟฟ้ายิ่งยวดอุณหภูมิสูง
Superconductivity
วัสดุที่อุณหภูมิสูง
Materials at high temperature
Issue Date: 2024
Citation: Journal of Physics and Chemistry of Solids 189, (June 2024) : 111948
Abstract: The layered hexagonal compound NaLiC4 has been thoroughly investigated to assess its thermodynamic and dynamic stability in comparison to its parent compounds NaC2and LiC2. Utilizing first-principles calculations and phonon analyses, NaLiC4 has demonstrated remarkable stability within a pressure range of 50 to 100 GPa, surpassing the thermodynamic stability of NaC2and LiC2. It exhibits metallic behavior with distinctive electronic bands along high symmetry paths, suggesting a conducive environment for superconductivity. The superconducting transition temperature (Tc) of NaLiC4under different pressures was estimated using the Allen-Dynes equation, with a maximum Tcof 39 K observed at 50 GPa. However, as pressure increases, Tcgradually decreases, indicating the significant impact of external pressure conditions on the superconducting properties. Notably, the in-plane E2gphonon mode originating from the layered hexagonal structure of carbon atoms plays a crucial role in facilitating electron-phonon coupling and influencing the superconducting behavior and Tcof NaLiC4. These findings highlight the thermodynamic and dynamic stability of NaLiC4as a promising candidate for exploring superconductivity, offering insights into its electronic properties, pressure-dependent Tcbehavior, and the influence of specific phonon modes. Further theoretical investigations and experimental studies are necessary to fully unlock the potential of NaLiC4and its contribution to the development of high-performance superconductors
Description: สามารถเข้าถึงบทความฉบับเต็มได้ที่ https://doi.org/10.1016/j.jpcs.2024.111948
URI: https://has.hcu.ac.th/jspui/handle/123456789/2059
Appears in Collections:Science and Technology - Artical Journals

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