成核
材料科学
化学物理
再结晶(地质)
结晶
晶体生长
堆积
动力学
外延
冰晶
分子动力学
电子衍射
限制
透射电子显微镜
Crystal(编程语言)
过饱和度
纳米技术
芯(光纤)
构造形成
升华(心理学)
热力学
结晶学
衍射
作者
Xudan Huang,Zifeng Yuan,Chon-Hei Lo,Huacong Sun,Lei Liao,Hong Han,Wenxi Li,Wenlong Wang,Zhi Ke Xu,Lei Liu,Xuedong Bai,L. Xu,Enge Wang,Lifen Wang
摘要
The selection of stacking order in a broad range of close-packed polymorphic materials remains a challenging enigma. Using in situ cryogenic transmission electron microscopy, we uncover the atomistic mechanisms governing the vapor deposition growth of ice. We find that the heterogeneous ice nucleation and growth undergo recrystallization accompanied by bifurcation, reflecting a coherent epitaxial transition from a cubic-ice embryonic core to hexagonal-ice prismatic dendrites, with intermediate stacking-disordered layers serving as a dynamic fluctuating bridge. Supported by molecular dynamics simulations, these phenomena are attributed to a surface-constrained, symmetry-breaking crystallization preference aligned with the principle of minimizing free energy. Our results highlight the critical role of the combined effects of surface and symmetry in shaping ice crystallization, providing fresh insights into crystal growth mechanisms and guiding principles for the design of advanced materials.
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