DOE OSTI · 3030781
Predicting interface structure using the minima hopping method
Abstract
Here, we adapt the minima hopping method (MHM) to the problem of interfacial structure prediction and apply it to study a canonical problem, the tilt grain boundaries in SrTiO 3 . Our method employs a hybrid approach by first exploring the potential energy surface (PES) of different grain boundary samplings with an empirical force field, among which the fifteen candidates with lower energies are then refined using ab initio density functional theory (DFT) calculations. During the exploratory stage, we bias the search using a local order parameter to primarily sample various reconstructions in the vicinity of the interface, while preserving the crystallinity of the bulk regions. We further enhance the search by incorporating initial structures with rigid body displacements to account for translational variations between bulk phases, enabling the MHM to effectively generate both stoichiometric and nonstoichiometric SrTiO 3 Σ3(111)[110] and Σ3(112)[110] grain boundaries. From an algorithmic standpoint, MHM outperforms earlier studies based on genetic algorithms (GA) by identifying more stable interfacial structures of several SrTiO 3 grain boundaries. The performance of the present implementation of the MHM approach is primarily limited by exploring an approximate description of the PES with a rather simple Buckingham potential. This limitation leads to variations in performance when compared to approaches utilizing more advanced surrogate PES models, such as direct DFT-PES sampling or GA with the embedded atom method (EAM). Despite the present limitations, the MHM approach is able to yield interfacial structures with comparable or lower interfacial energies in specific cases, such as Σ3(111)[110] Γ=1, ±0.5 and Σ3(112)[110] Γ= ±1, −2, underscoring the robustness of the MHM approach even with a simple approximation of the DFT PES. The MHM interfacial structure prediction method thus offers an efficient approach to understanding the grain boundaries and heterointerfaces at the atomic scale, providing an important prerequisite for effective materials design.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Chou, Chang-Ti [Northwestern Univ., Evanston, IL (United States)] (ORCID:0000000271896284), Patel, Shane [Northwestern Univ., Evanston, IL (United States)], Amsler, Maximilian [Cornell Univ., Ithaca, NY (United States)] (ORCID:0000000183502476), Wolverton, Christopher M. [Northwestern Univ., Evanston, IL (United States)] (ORCID:000000032248474X). 2025-11-05. Predicting interface structure using the minima hopping method. https://doi.org/10.1103/zg25-qf5p
Cite the original work for its findings. Save a collection to share your selection of sources.