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石墨烯纳米毛细管中盐结晶的微观动力学途径

Microscopic Kinetics Pathway of Salt Crystallization in Graphene Nanocapillaries.

作者信息

Wang Lifen, Chen Ji, Cox Stephen J, Liu Lei, Sosso Gabriele C, Li Ning, Gao Peng, Michaelides Angelos, Wang Enge, Bai Xuedong

机构信息

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

Songshan Lake Laboratory for Materials Science, Dongguan 523000, China.

出版信息

Phys Rev Lett. 2021 Apr 2;126(13):136001. doi: 10.1103/PhysRevLett.126.136001.

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 graphitelike 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.

摘要

从微观动力学和热力学细节的角度对结晶过程进行基本理解,仍然是物理科学中的一项关键挑战。在此,我们通过使用原位石墨烯液体池透射电子显微镜,揭示了限制在石墨烯池内的溶液中氯化钠结晶的原子机制。我们发现岩盐氯化钠形成了独特的六边形形态。我们还观察到一个过渡性类石墨相的出现,它可能在两步途径中充当中间体。借助密度泛函理论计算,我们提出这些观察结果是由受限条件下基底 - 溶质相互作用与热力学之间的微妙平衡导致的。我们的结果突出了受限条件对结晶动力学和热力学的影响,为非均相结晶理论提供了新见解,并为材料设计提供了一条潜在途径。

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