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Published on: May 15, 2015
Hydrogen Vacancy Induced Superconductivity Collapse in A15 Lanthanum Hydride
Israel Osmond1, Lewis J Conway2,3, Mikhail A Kuzovnikov1
1University of Edinburgh, Centre for Science at Extreme Conditions and School of Physics and Astronomy, EH9 3FD, United Kingdom.
High-pressure lanthanum hydride (LaH) materials exhibit high-temperature superconductivity. This study reveals that the A15-LaH framework is stable and tunable, showing a superconductor-to-insulator transition linked to hydrogen content.
Area of Science:
- Materials Science
- Condensed Matter Physics
- Superconductivity
Background:
- Hydrogen-rich materials are key to achieving high-temperature superconductivity under pressure.
- The relationship between composition and superconducting properties in lanthanum hydrides remains underexplored.
Purpose of the Study:
- To systematically investigate the interplay between composition, structure, and superconductivity in A15-type lanthanum hydrides.
- To explore the stability and tunability of the A15 framework under varying hydrogen content and pressure.
Main Methods:
- Experimental synthesis and characterization of lanthanum hydrides at high pressures.
- Computational studies to model structural and electronic properties.
- In-situ measurements of superconducting transition temperature (T_c) and hydrogen content.
Main Results:
- A15-type LaH_{5.75-x} exhibits high-T_c superconductivity (98 K at 94 GPa) when hydrogen fully occupies interstitial sites.
- A superconductor-to-insulator transition occurs upon decompression, driven by hydrogen depopulation below LaH_5.
- The A15 framework remains stable from 120 GPa down to 4 GPa, with reversible hydrogen content changes.
Conclusions:
- The A15 framework in lanthanum hydrides offers exceptional stability and tunability.
- Compositional tuning via hydrogen content is a critical factor in modulating superconductivity in these materials.
- This provides a unique platform for studying the fundamental links between structure, composition, and superconductivity.
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