arXiv · 1709.04581
Tuning the ferro- to para-electric transition temperature and dipole orientation of group-IV monochalcogenide monolayers
Abstract
Coordination-related, two-dimensional (2D) structural phase transitions are a fascinating and novel facet of two-dimensional materials with structural degeneracies. Nevertheless, a unified theoretical account of these transitions remains absent, and the following points are established through {\em ab-initio} molecular dynamics and 2D discrete clock models here: Group-IV monochalcogenide (GeSe, SnSe, SnTe, ...) monolayers have four degenerate structural ground states, and a 2D phase transition from a three-fold coordinated onto a five-fold coordinated structure takes place at finite temperature. On unstrained samples, the 2D phase transition requires lattice parameters to freely evolve. A fundamental energy scale permits understanding this transition. The transition temperature $T_c$ and the orientation of the in-plane intrinsic electric dipole can be controlled by moderate uniaxial tensile strain, and a modified discrete clock model describes the transition on strained samples. These results establish a general underlying theoretical background to understand structural phase transitions in 2D materials and their effects on material properties.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Salvador Barraza-Lopez, Thaneshwor P. Kaloni, Shiva P. Poudel, Pradeep Kumar. 2017-09-14. Tuning the ferro- to para-electric transition temperature and dipole orientation of group-IV monochalcogenide monolayers. https://doi.org/10.1103/physrevb.97.024110
Cite the original work for its findings. Save a collection to share your selection of sources.