EconPapers    
Economics at your fingertips  
 

Atomic-resolution imaging reveals nucleus-free crystallization in two-dimensional amorphous ice on graphite

Zi-Feng Yuan, Ye Tian (), Binze Tang, Tiancheng Liang, Chon-Hei Lo, Zixiang Yan, Dong Guan, Jiadong Guo, En-Ge Wang (), Ying Jiang () and Limei Xu ()
Additional contact information
Zi-Feng Yuan: Peking University
Ye Tian: Peking University
Binze Tang: Peking University
Tiancheng Liang: Peking University
Chon-Hei Lo: Peking University
Zixiang Yan: Peking University
Dong Guan: Peking University
Jiadong Guo: Peking University
En-Ge Wang: Peking University
Ying Jiang: Peking University
Limei Xu: Peking University

Nature Communications, 2025, vol. 16, issue 1, 1-10

Abstract: Abstract Two-dimensional (2D) crystallization at interfaces or in thin films plays a critical role in many natural phenomena and technological applications, yet its microscopic mechanism remains elusive due to the challenges of directly observing atomic-scale transient states during crystallization. Here, we present atomic-resolution imaging of 2D ice crystallization on graphite surface using qPlus-based cryogenic atomic force microscopy (AFM) combined with molecular dynamics (MD) simulations. The crystallization of 2D amorphous bilayer ice undergoes a fractal-to-compact transition as temperature increases. Instead of forming a critical nucleus as predicted by classical theories, the crystallization firstly proceeds via the dendritic extension of fractal islands, followed by compact growth with defect healing at the percolated edges. We find that this process is significantly assisted by out-of-plane adsorbed (ad-) water molecules, which, like a spider weaving its web, facilitate the rearrangement of hydrogen-bonding network from disordered pentagons or heptagons to ordered hexagons. This fractal-to-compact crystallization pathway, mediated by ad-molecules, presents a non-classical ordering mechanism beyond classical nucleation theory, and may offer general insights into the crystallization at the 2D limit.

Date: 2025
References: Add references at CitEc
Citations:

Downloads: (external link)
https://www.nature.com/articles/s41467-025-63664-z Abstract (text/html)

Related works:
This item may be available elsewhere in EconPapers: Search for items with the same title.

Export reference: BibTeX RIS (EndNote, ProCite, RefMan) HTML/Text

Persistent link: https://EconPapers.repec.org/RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-63664-z

Ordering information: This journal article can be ordered from
https://www.nature.com/ncomms/

DOI: 10.1038/s41467-025-63664-z

Access Statistics for this article

Nature Communications is currently edited by Nathalie Le Bot, Enda Bergin and Fiona Gillespie

More articles in Nature Communications from Nature
Bibliographic data for series maintained by Sonal Shukla () and Springer Nature Abstracting and Indexing ().

 
Page updated 2025-10-01
Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-63664-z