Periodic Trends and a Physics-Based Multistage Search for High-Tc Hydride Superconductors
Tianran Chen, Taner Yildirim
Abstract
Hydrogen-rich materials under pressure are candidates for conventional phonon-mediated superconductivity, but first-principles electron--phonon-coupling (EPC) calculations are computationally demanding. We develop an interpretable multistage workflow for prioritizing binary hydride superconductors before full EPC calculations. Using controlled cubic XmHn prototypes at 200~GPa, we introduce the spectral moment A1 as an intermediate measure of electron--phonon perturbation strength. In its linewidth-based construction, A1 remains finite as harmonic phonons soften, allowing related structures with imaginary harmonic modes to be screened; it does not establish superconductivity or physical realizability for unstable structures. For dynamically stable cubic systems, A1 correlates strongly with the H-1s density-of-states fraction at the Fermi level, α, a projected Fermi-surface descriptor, β, and atomic number density, ρ. These trends are summarized heuristically by A1≈ hαβρ, where h is framework- and pressure-dependent; the descriptor is used for ranking, not as a universal Tc predictor. We incorporate αβρ and enthalpic competitiveness into a three-stage evolutionary search comprising multiobjective structural screening, harmonic-phonon stability filtering, and coarse density-functional perturbation-theory (DFPT) EPC calculations. Application to more than 100,000 binary hydride structures at 50 and 200~GPa identifies candidates and prioritizes NaH6 structural families. Higher-accuracy calculations show that Pm3m NaH6 is dynamically stable down to 50~GPa and has a harmonic Allen--Dynes estimate of Tc≈230~K. The framework combines electronic descriptors with progressively more expensive stability and EPC calculations for scalable hydride exploration.
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