Phase Diagram and High-Temperature Superconductivity of Compressed Selenium Hydrides
arXiv:1502.02607 · doi:10.1038/srep15433
Abstract
Recent discovery of high-temperature superconductivity (Tc = 190 K) in sulfur hydrides at megabar pressures breaks the traditional belief on the Tc limit of 40 K for conventional superconductors, and open up the doors in searching new high-temperature superconductors in compounds made up of light elements. Selenium is a sister and isoelectronic element of sulfur, with a larger atomic core and a weaker electronegativity. Whether selenium hydrides share similar high-temperature superconductivity remains elusive, but it is a subject of considerable interest. First-principles swarm structure predictions are performed in an effort to seek for energetically stable and metallic selenium hydrides at high pressures. We find the phase diagram of selenium hydrides is rather different from its sulfur analogy, which is indicates by the emergence of new phases and the change of relative stabilities. Three stable and metallic species with stoichiometries of HSe2, HSe and H3Se are identified above ~120 GPa and they all exhibit superconductive behaviors, of which the hydrogen-rich HSe and H3Se phases show high Tc in the range of 40-110 K. Our simulations established the high-temperature superconductive nature of selenium hydrides and provided useful route for experimental verification.
16 pages, 4 figures plus Supplemental materials
References in corpus (11)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Conventional superconductivity at 203 K at high pressures
- Superconductive "sodalite"-like clathrate calcium hydride at high pressures
- Hydrogen sulphide at high pressure: a strongly-anharmonic phonon-mediated superconductor
- Pressure-induced decomposition of solid hydrogen sulfide
- What superconducts in sulfur hydrides under pressure, and why
- High temperature superconductivity in sulfur and selenium hydrides at high pressure
- First-principles study of the pressure and crystal-structure dependences of the superconducting transition temperature in compressed sulfur hydrides
- Conventional superconductivity at 190 K at high pressures
- Non-BCS thermodynamic properties of H2S superconductor
- Hole superconductivity in and other sulfides under high pressure
Cited by in corpus (21)
- A Perspective on Conventional High-Temperature Superconductors at High Pressure: Methods and Materials
- Tellurium Hydrides at High Pressures: High-temperature Superconductors
- Hydrogen "penta-graphene-like" structure stabilized by hafnium: a high-temperature conventional superconductor
- Strong correlation between bonding network and critical temperature in hydrogen-based superconductors
- Possible Superconductivity Approaching Ice Point
- High-throughput discovery of high-temperature conventional superconductors
- High-pressure Phase Stability and Superconductivity of Pnictogen Hydrides and Chemical Trends for Compressed Hydrides
- Quantitative analysis of nonadiabatic effects in dense HS and PH superconductors
- Materials informatics based on evolutionary algorithms: Application to search for superconducting hydrogen compounds
- The Search for Superconductivity in High Pressure Hydrides
- Thermodynamics and superconductivity of SSeH
- Superconductivity of novel tin hydrides (SnH) under pressure
- Strong Anharmonic and Quantum Effects in Pm-3n AlH3 Under High Pressure: A First-Principles Study
- Prediction of Stable Ground-State Lithium Polyhydrides under High Pressures
- Materials under high pressure: A chemical perspective
- High-Temperature Superconductivity in the Ti--H System at High Pressures
- Quantum anharmonic enhancement of superconductivity in ScH at high pressures: a first-principles study
- Decomposition of solid hydrogen bromide at high pressure
- The Icosahedral (H Supermolecule
- Pressure-induced high temperature superconductivity in H3X (X=As, Se, Br, Sb, Te and I)
- Strong-coupling character of superconducting phase in compressed selenium hydride