High-pressure II-III phase transition in solid hydrogen: Insights from state-of-the-art ab initio calculations
arXiv:2205.01368 · doi:10.1103/PhysRevResearch.4.L042009
Abstract
The high-pressure II-III phase transition in solid hydrogen is investigated using the random phase approximation and diffusion Monte Carlo. Good agreement between the methods is found confirming that an accurate treatment of exchange and correlation increases the transition pressure by more than 100 GPa with respect to semilocal density functional approximations. Using an optimized hybrid functional, we then reveal a low-symmetry structure for phase II generated by an out-of-plane librational instability of the C2/c phase III structure. This instability weakens the in-plane polarization of C2/c leading to the well-known experimental signatures of the II-III phase transition such as a sharp shift in vibron frequency, infrared activity and lattice parameter ratio. Finally, we discuss the zero-point vibrational energy that plays an important role in stabilizing phase III at lower pressures.
7 pages, 4 figures + Supplemental Materials (10 pages), to appear in Physical Review Research
References in corpus (11)
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- The Stochastic Self-Consistent Harmonic Approximation: Calculating Vibrational Properties of Materials with Full Quantum and Anharmonic Effects
- Efficient and accurate calculation of exact exchange and RPA correlation energies in the Adiabatic-Connection Fluctuation-Dissipation theory
- Finite-size correction in many-body electronic structure calculations
- Hexagonal structure of phase III of solid hydrogen
- Nature of the Metallization Transition in Solid Hydrogen
- Coupled Electron-Ion Monte Carlo simulation of hydrogen molecular crystals
- Correlation energy within exact-exchange ACFD theory: systematic development and simple approximations
- A comparative study using state-of-the-art electronic structure theories on solid hydrogen phases under high pressures
- Random phase approximation with exchange for an accurate description of crystalline polymorphism
- Probing anharmonic phonons by quantum correlators: A path integral approach