Nuclear quantum and H/D isotope effects on hydrogen-bond symmetrization in lithium hydroxide crystals at high pressure
Abstract
Molecular crystals with hydrogen bonds undergo a phase transition and symmetrization of the hydrogen-bond network at high pressures. Lithium hydroxide (LiOH) also undergoes a similar phenomenon; however, the pressure at which it occurs remains unclear. This study employed the path integral molecular dynamics (PIMD) and static density functional theory calculations to investigate hydrogen-bond symmetrization in LiOH crystals at high pressures. The nuclear quantum effects centralized the protons and significantly lowered the pressure required for hydrogen-bond symmetrization (∼500 GPa in PIMD, compared with the 1200 GPa recorded in the static density functional theory calculations). Furthermore, the pressure required for symmetrization in the deuterated system [PIMD(D)] was higher than that required in the nondeuterated system [PIMD(H)]. This indicated that the H/D isotope effect significantly affects the hydrogen-bond symmetrization. These results demonstrate that nuclear quantum and isotope effects significantly affect hydrogen-bond symmetrization in LiOH under extreme conditions.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (4)
Hikaru Tanaka
Kazuaki Kuwahata
Graduate Major in Materials and Information Sciences, Institute of Science Tokyo 1 , 2-12-1, Ookayama, Meguro-ku, Tokyo 152-8550,
Masanori Tachikawa
Graduate School of Nanobio Science, Yokohama City University
Taro Udagawa
Department of Chemistry and Biomolecular Science, Faculty of Engineering, Gifu University, 1-1 Yanagido, Gifu 501-1193, Japan