Here we demonstrate a simple, yet powerful method, atomic force microscopy (AFM) nanomechanical mapping, to directly visualize the interdiffusion and microstructure at the interface between two polymers. Nanomechanical measurements on the interface between poly(vinyl chloride) (PVC) and poly(caprolactone) (PCL) allow quantification of diffusion kinetics, observation of microstructure, and evaluation of mechanical properties of the interdiffusion regions. These results suggest that nanomechanical mapping of interdiffusion enables the quantification of diffusion with high resolution over large distances without the need of labeling and the assessment of mechanical property changes resulting from the interdiffusion
In this work, a dual-frequency resonance tracking (DFRT) method was applied on atomic force acoustic...
Atomic force microscopy (AFM) is a versatile tool to perform mechanical characterization of surface...
In polymer nanocomposites (PNCs), the physical and chemical interactions at the polymer matrix–fille...
Methods based on the atomic force microscope (AFM) were implemented or developed to measure and map ...
The present article offers an overview on the use of atomic force microscopy (AFM) to characterize t...
Visualization and Quantification of the Chemical and Physical Properties at a Diffusion-Induced Inte...
The atomic force microscope (AFM) was used to study a series of self-assembled systems: alkanethiol ...
[EN] Fast, high resolution and wide elastic modulus range mapping of heterogeneous interfaces repres...
Polymer latex surfaces were investigated with a new instrument performing mechanical imaging based o...
Dynamic atomic force microscopy is known for its ability to image soft materials without inducing se...
Engineering the next generation of smart materials will require new methods of surface characterizat...
The atomic force microscope (AFM) is a very promising and powerful tool for investigating a range of...
The potentials of AFM dynamic force spectroscopy for quantitative local mechanical property mapping ...
The bulk mechanical properties of soft materials have been studied widely, but it is unclear to what...
The analysis of mechanical properties on a nanometer scale is a useful tool for combining informatio...
In this work, a dual-frequency resonance tracking (DFRT) method was applied on atomic force acoustic...
Atomic force microscopy (AFM) is a versatile tool to perform mechanical characterization of surface...
In polymer nanocomposites (PNCs), the physical and chemical interactions at the polymer matrix–fille...
Methods based on the atomic force microscope (AFM) were implemented or developed to measure and map ...
The present article offers an overview on the use of atomic force microscopy (AFM) to characterize t...
Visualization and Quantification of the Chemical and Physical Properties at a Diffusion-Induced Inte...
The atomic force microscope (AFM) was used to study a series of self-assembled systems: alkanethiol ...
[EN] Fast, high resolution and wide elastic modulus range mapping of heterogeneous interfaces repres...
Polymer latex surfaces were investigated with a new instrument performing mechanical imaging based o...
Dynamic atomic force microscopy is known for its ability to image soft materials without inducing se...
Engineering the next generation of smart materials will require new methods of surface characterizat...
The atomic force microscope (AFM) is a very promising and powerful tool for investigating a range of...
The potentials of AFM dynamic force spectroscopy for quantitative local mechanical property mapping ...
The bulk mechanical properties of soft materials have been studied widely, but it is unclear to what...
The analysis of mechanical properties on a nanometer scale is a useful tool for combining informatio...
In this work, a dual-frequency resonance tracking (DFRT) method was applied on atomic force acoustic...
Atomic force microscopy (AFM) is a versatile tool to perform mechanical characterization of surface...
In polymer nanocomposites (PNCs), the physical and chemical interactions at the polymer matrix–fille...