Seeding ice growth at ambient conditions using nano graphene oxide
Yi Zheng, C. L. Su, Jiong Lu, Kian Ping Loh

TL;DR
This study demonstrates that nano graphene oxide flakes can seed ice growth at ambient conditions, enabling real-time visualization of ice nucleation and growth processes, and offers a new method to control heterogenous ice formation.
Contribution
It introduces nano graphene oxide as an effective seed for ice nucleation at ambient conditions and reveals how functional group modifications influence ice growth.
Findings
Real-time imaging of ice phase transitions from amorphous to cubic and hexagonal ice.
NanoGO density and functional groups affect ice nucleation and growth.
Controlled heterogenous ice nucleation can be achieved using nanoGOs.
Abstract
Water wetting on a hydrophobic surface at ambient conditions is disallowed by the nonpolar nature of the surface and high vapor pressure of water. However, the presence of sub-millimeter sized hydrophilic patches allows the waxy wings of desert beetles to become wettable by morning mist. Here, we show that a sprinkle of graphene oxide nanoflakes (nanoGOs) is effective in condensing water nanodroplets and seeding ice epitaxy on graphite at ambient conditions. By controlling relative humidity and nanoGO density, we are able to study the formation of a complete ice wetting layer on a time scale of 20 hours. This presents an unprecedented opportunity to visualize ice nucleation and growth in real time using non-contact atomic force microscopy. The stages of crystallization, as proposed by Ostwald in 1897, is fully unfolded at a microscopic level for the first time. We obtain real-time…
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Taxonomy
Topicsnanoparticles nucleation surface interactions · Physiological and biochemical adaptations · Calcium Carbonate Crystallization and Inhibition
