English

Microscopic kinetics pathway of salt crystallization in graphene nanocapillaries

Materials Science 2021-04-07 v1

Abstract

The fundamental understanding of crystallization, in terms of microscopic kinetic and thermodynamic details, remains a key challenge in the physical sciences. Here, by using in situ graphene liquid cell transmission electron microscopy, we reveal the atomistic mechanism of NaCl crystallization from solutions confined within graphene cells. We find that rock salt NaCl forms with a peculiar hexagonal morphology. We also see the emergence of a transitory graphite-like phase, which may act as an intermediate in a two-step pathway. With the aid of density functional theory calculations, we propose that these observations result from a delicate balance between the substrate-solute interaction and thermodynamics under confinement. Our results highlight the impact of confinement on both the kinetics and thermodynamics of crystallization, offering new insights into heterogeneous crystallization theory and a potential avenue for materials design.

Keywords

Cite

@article{arxiv.2103.05987,
  title  = {Microscopic kinetics pathway of salt crystallization in graphene nanocapillaries},
  author = {Lifen Wang and Ji Chen and Stephen J. Cox and Lei Liu and Gabriele C. Sosso and Ning Li and Peng Gao and Angelos Michaelides and Enge Wang and Xuedong Bai},
  journal= {arXiv preprint arXiv:2103.05987},
  year   = {2021}
}

Comments

Main: 7 pages, 4 figures; Supplemental Material: 12 pages, 7 figures