Progress and Challenges in Ab Initio Simulations of Quantum Nuclei in Weakly Bonded Systems
arXiv:2103.04206 · doi:10.1063/5.0042572
Abstract
Atomistic simulations based on the first-principles of quantum mechanics are reaching unprecedented length scales. This progress is due to the growth in computational power allied with the development of new methodologies that allow the treatment of electrons and nuclei as quantum particles. In the realm of materials science, where the quest for desirable emergent properties relies increasingly on soft weakly-bonded materials, such methods have become indispensable. In this perspective, an overview of simulation methods that are applicable for large system sizes and that can capture the quantum nature of electrons and nuclei in the adiabatic approximation is given. In addition, the remaining challenges are discussed, especially regarding the inclusion of nuclear quantum effects (NQE) beyond a harmonic or perturbative treatment, the impact of NQE on electronic properties of weakly-bonded systems, and how different first-principles potential energy surfaces can change the impact of NQE on the atomic structure and dynamics of weakly bonded systems.
5 figures
References in corpus (21)
- van der Waals forces in density functional theory: The vdW-DF method
- Phase transitions of hybrid perovskites simulated by machine-learning force fields trained on-the-fly with Bayesian inference
- Competing quantum effects in the dynamics of a flexible water model
- Efficient stochastic thermostatting of path integral molecular dynamics
- How to remove the spurious resonances from ring polymer molecular dynamics
- Boltzmann-conserving classical dynamics in quantum time-correlation functions: Matsubara dynamics
- Coupled cluster theory in materials science
- A fractionally ionic approach to polarizability and van der Waals many-body dispersion calculations
- Relation of centroid molecular dynamics and ring-polymer molecular dynamics to exact quantum dynamics
- Anharmonic and Quantum Fluctuations in Molecular Crystals: A First-Principles Study of the Stability of Paracetamol
- Anharmonicity Measure for Materials
- On the Consistency of Approximate Quantum Dynamics Simulation Methods for Vibrational Spectra in the Condensed Phase
- Secondary structure of Ac-Ala-LysH polyalanine peptides (=5,10,15) in vacuo: Helical or not?
- Inverse Temperature Dependence of Nuclear Quantum Effects in DNA Base Pairs
- Stability of Complex Biomolecular Structures: Vander Waals, Hydrogen Bond Cooperativity, and Nuclear Quantum Effects
- Dielectric dependent hybrid functionals for heterogeneous materials
- Quasi-harmonic approximation of thermodynamic properties of ice Ih, II, and III
- Decisive role of nuclear quantum effects on surface mediated water dissociation at finite temperature
- The CECAM Electronic Structure Library and the modular software development paradigm
- Next generation extended Lagrangian first principles molecular dynamics
- Anharmonic Effects in the Low-Frequency Vibrational Modes of Aspirin and Paracetamol Crystals
Cited by in corpus (7)
- Quantum theory of light-driven coherent lattice dynamics
- First-Principles Simulations of Tip Enhanced Raman Scattering Reveal Active Role of Substrate on High-Resolution Images
- Quadratic Scaling Bosonic Path Integral Molecular Dynamics
- Proton dynamics in water confined at the interface of the graphene-MXene heterostructure
- Ab initio study of water dissociation on a charged Pd(111) surface
- Vibronic Couplings and Temperature Effects in the Ultrafast Dynamics of a Charge-Transfer Complex
- Discovering Nuclear Models from Symbolic Machine Learning