English

First Principles Prediction Unveils High-T$_c$ Superconductivity in YSc$_2$H$_{24}$ Cage Structures

Superconductivity 2024-09-24 v2

Abstract

The quest for room-temperature superconductivity has been a long-standing aspiration in the field of materials science, driving extensive research efforts. In this work, we present a novel hydride, YSc2_2H24_{24}, which is stable at high pressure, identified through crystal structure prediction methods. The discovered material is crystalline in a hexagonal unit cell with space group P6/mmmP6/mmm and has a fastinating structure consisting of two distinct cages: Sc@H24_{24} and Y@H30_{30}. By conducting an extensive numerical investigation of lattice dynamics, electron-phonon coupling, and solving the isotropic Eliashberg equation, we have revealed a significant value of λ\lambda = 3.27 as the underlying factor responsible for the remarkably high critical temperature (Tc_c) of 302-330 K in YSc2_2H24_{24} at a pressure of 310 GPa. As pressure increases, the Tc_c remains above the ambient temperature. Our work has the potential to enhance the existing understanding of high-temperature superconductors, with implications for practical applications. The unique network of these cage-like structures holds great promise for advancing our understanding of high-temperature superconductors, potentially leading to innovative applications.

Keywords

Cite

@article{arxiv.2311.08070,
  title  = {First Principles Prediction Unveils High-T$_c$ Superconductivity in YSc$_2$H$_{24}$ Cage Structures},
  author = {Truong-Tho Pham and Viet-Ha Chu and Duc-Long Nguyen},
  journal= {arXiv preprint arXiv:2311.08070},
  year   = {2024}
}