Conventional high-temperature superconductivity in metallic, covalently bonded, binary-guest C-B clathrates
arXiv:2210.05042 · doi:10.1021/jacs.2c10089
Abstract
Inspired by the synthesis of XB3C3 (X= Sr, La) compounds in the bipartite sodalite clathrate structure, density functional theory (DFT) calculations are performed on members of this family containing up to two different metal atoms. A DFT-chemical pressure analysis on systems with X= Mg, Ca, Sr, Ba reveals that the size of the metal cation, which can be tuned to stabilize the B-C framework, is key for their ambient-pressure dynamic stability. High-throughput density functional theory calculations on 105 Pm-3 symmetry XYB6C6 binary-guest compounds (where X, Y are electropositive metal atoms) find 22 that are dynamically stable at 1 atmosphere, expanding the number of potentially synthesizable phases by 19 (18 metals and 1 insulator). The density of states at the Fermi level and superconducting critical temperature, Tc, can be tuned by changing the average oxidation state of the metal atoms, with Tc being highest for an average valence of +1.5. KPbB6C6, with an ambient-pressure Eliashberg Tc of 88 K, is predicted to possess the highest-Tc among the studied Pm-3n XB3C3 or Pm-3 XY B6C6 phases, and calculations suggest it may be synthesized using high-pressure high-temperature techniques then quenched to ambient conditions.
References in corpus (3)
Cited by in corpus (16)
- Structure, Stability and Superconductivity of N-doped Lutetium Hydrides at kbar Pressures
- The Maximum of Conventional Superconductors at Ambient Pressure
- Effect of Doping on the phase stability and Superconductivity in LaH10
- InvDesFlow: An AI-driven materials inverse design workflow to explore possible high-temperature superconductors
- Machine learning guided discovery of superconducting calcium borocarbides
- Prospect of high-temperature superconductivity in layered metal borocarbides
- Superconductivity near 70 K in boron-carbon clathrates MBC (M = Na, K, Rb, Cs) at ambient pressure
- Hydride Units Filled B--C Clathrate: A New Pathway for High-Temperature Superconductivity at Ambient Pressure
- Prediction of high-temperature ambient-pressure superconductivity in hexagonal boron-rich clathrates
- The Impact of Ionic Anharmonicity on Superconductivity in Metal-Stuffed B-C Clathrates
- Prediction of superconductivity in metallic boron-carbon compounds from 0 to 100 GPa by high-throughput screening
- Machine-learning Guided Search for Phonon-mediated Superconductivity in Boron and Carbon Compounds
- Single layer clathrane: A potential superconducting two-dimensional (2D) hydrogenated metal borocarbide
- HTSC-2025: A Benchmark Dataset of Ambient-Pressure High-Temperature Superconductors for AI-Driven Critical Temperature Prediction
- Theoretical Predictions of MB5N5: Atom-Stuffed Boronitride Clathrate Cages Derived from the High-Pressure Superhydride
- High- AgBC and CuBC superconductors accessible via topochemical reactions