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We believe that this nano-scale adhesion energy measurement method could be further extended for measuring the adhesion energy of other 2D materials.
However, measuring the adhesion can be very difficult because such coatings have low cohesive strength and are brittle.
Two novel optical interferometry diagnostics methods, wave pattern identification and correlation detection, were developed for measuring the adhesion strength between a film or coatings and substrate.
An apparatus was first designed for specifically measuring the adhesion force of ice on a curved surface at climatic temperature where a vertical force was applied to the mounted structure in the test apparatus.
In this work, the coupled calcite-brine-oil system was studied by measuring the adhesion force of an organic acid functionalized solid probe with a calcite surface, using an atomic force microscope.
Here, we have employed a novel scanning technique, namely PeakForce QNM [49], that is useful in measuring the adhesion force between AuNPs and chemically modified surface.
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As shown in Figure 2c, Shin et al. measured the adhesion energy of graphene to various adhesive layers (or target substrates) and found that a graphene/poly vinyl phenol) (PVP) system exhibited the highest adhesion energy (2.31 ± 0.11 Jm − 2), higher than that of a graphene/Cu system (0.72 ± 0.07 Jm − 2) [53].
To the best of our knowledge, no one has measured the adhesion parameters for a tumor cell line, although measurement should be possible [77] [80].
Besides being used to conduct the nano-scale mechanical test, AFM has also been used to measure the adhesion force of cells on different biomaterial surfaces24,25,26.
The Centrifugal Technique was used to measure the adhesion force distribution of several hundred particles simultaneously.
The microlayered structure made it possible to directly measure the adhesion using the T-peel test.
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