论文标题

2D冰中的边缘驱动相变

Edge-Driven Phase Transitions in 2D Ice

论文作者

Negi, Suchit, Carvalho, Alexandra, Trushin, Maxim, Neto, A. H. Castro

论文摘要

2D水被原子平坦的分层材料限制,即使在室温下,也可以转变为各种晶相。但是,为了完全控制晶体状态,我们不仅应将水限制在平面方向上,还应限制其平面运动,形成2D水簇或丝带。一种方法是使用电场,尤其是相邻极性材料的固有电场。我们发现,位于两个六角形硼硼HBN纳米骨中的2D水簇的晶相由纳米骨边缘,纳米骨的极性及其中层距离及其中距离确定。我们利用密度功能理论在分子动力学模拟的进一步帮助下建立了综合相图,这些相图证明了液相和固相之间以及不同晶体阶的状态之间的过渡。我们还表明,当水在外部压力下在HBN通道之间流动时,保持了结晶订单。我们的结果通过使用极性材料的微观电场,为控制水结构的控制及其流动打开了有希望的途径。

2D water, confined by atomically flat layered materials, may transit into various crystalline phases even at room temperature. However, to gain full control over the crystalline state, we should not only confine water in the out of plane direction but also restrict its in plane motion, forming 2D water clusters or ribbons. One way to do this is by using an electric field, in particular the intrinsic electric field of an adjacent polar material. We have found that the crystalline phases of 2D water clusters placed between two hexagonal boron nitride hBN nanoribbons are crucially determined by the nanoribbons edges, the resulting polarity of the nanoribbons, and their interlayer distance. We make use of density functional theory with further assistance of molecular dynamics simulations to establish the comprehensive phase diagrams demonstrating transitions between liquid and solid phases and between the states of different crystalline orders. We also show that the crystalline orders are maintained when water flows between hBN channels under external pressure. Our results open a promising pathway towards the control of water structure and its flow by the use of the microscopic electric field of polar materials.

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