亚稳态
相变
材料科学
冰晶
无定形冰
相(物质)
结晶学
化学物理
透射电子显微镜
多态性(计算机科学)
六方晶系
堆积
纳米技术
化学
凝聚态物理
光学
物理
无定形固体
基因型
有机化学
基因
生物化学
作者
Ji Su Park,Namgyu Noh,Jungjae Park,Yoonsu Shim,Sanghyeon Park,Yusra Qureshi,Sung Yong Kang,Yoon Huh,Chan‐Woo Lee,Jong Min Yuk
出处
期刊:Nano Letters
[American Chemical Society]
日期:2024-08-23
卷期号:24 (37): 11504-11511
被引量:9
标识
DOI:10.1021/acs.nanolett.4c02870
摘要
Ice, one of the most enigmatic materials on Earth, exhibits diverse polymorphism, with research mainly focusing on the most commonly observed phases: hexagonal ice (Ih), cubic ice (Ic), and stacking-disordered ice (Isd). While their formation or structural changes are crucial for advancements in cloud science, climate modeling, and cryogenic technology, the molecular mechanisms driving these phenomena remain unexplored. Herein, utilizing cryogenic transmission electron microscopy, we investigate the formation of ice at two different temperatures, demonstrating a size-dependent phase shift from Ic to Isd. Furthermore, a relatively metastable cubic phase in Isd transitions to a hexagonal phase under electron beam radiation. This transition, facilitated by crystal defects, contrasts with perfect crystalline Ic, which maintains its original phase, emphasizing the importance of defects in polymorphic phase transitions. Our findings provide novel insights on phase control during the ice growth processes and polymorphic phase transitions from the cubic-to-hexagonal phases.
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