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Stiffness and evolution of interfacial micropancakes revealed by AFM quantitative nanomechanical imaging

journal contribution
posted on 2024-11-01, 18:35 authored by Binyu Zhao, Xingya Wang, Yang Song, Jun Hu, Junhong Lu, Xingfei Zhou, Renzhong Tai, Xuehua Zhang, Lijuan Zhang
Micropancakes are quasi-two-dimensional micron-sized domains on crystalline substrates (e.g. highly oriented pyrolytic graphite (HOPG)) immersed in water. They are only a few nanometers thick, and are suspected to come from the accumulation of dissolved air at the solid-water interface. However, the exact chemical nature and basic physical properties of micropancakes have been under debate ever since their first observation, primarily due to the lack of a suitable characterization technique. In this study, the stiffness of micropancakes at the interface between HOPG and ethanol-water solutions was investigated by using PeakForce Quantitative NanoMechanics (PF-QNM) mode Atomic Force Microscopy (AFM). Our measurements showed that micropancakes were stiffer than nanobubbles, and for bilayer micropancakes, the bottom layer in contact with the substrate was stiffer than the top one. Interestingly, the micropancakes became smaller and softer with an increase in the ethanol concentration in the solution, and were undetectable by AFM above a critical concentration of ethanol. But they re-appeared after the ethanol concentration in the solution was reduced. Clearly the evolution and stiffness of the micropancakes were dependent on the chemical composition in the solution, which could be attributed to the correlation of the mechanical properties of the micropancakes with the surface tension of the liquid phase. Based on the "go-and-come" behaviors of micropancakes with the ethanol concentration, we found that the micropancakes could actually tolerate the ethanol concentration much higher than 5%, a value reported in the literature. The results from this work may be helpful in alluding the chemical nature of micropancakes.

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Related Materials

  1. 1.
    DOI - Is published in 10.1039/c5cp01366f
  2. 2.
    ISSN - Is published in 14639076

Journal

Physical Chemistry Chemical Physics

Volume

17

Issue

20

Start page

13598

End page

13605

Total pages

8

Publisher

Royal Society of Chemistry

Place published

United Kingdom

Language

English

Copyright

© the Owner Societies 2015

Former Identifier

2006053681

Esploro creation date

2020-06-22

Fedora creation date

2015-09-29

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