We have characterized the frictional properties of nanostructured carbon films grown by supersonic cluster beam deposition via an atomic force-friction force microscope (AFM-FFM). The experimental data are discussed on the basis of a modified Amonton's law for friction, stating a linear dependence of friction on load plus an adhesive offset accounting for a finite friction force in the limit of null total applied load. Molecular dynamics simulations of the interaction of the AFM tip with the nanostructured carbon confirm the validity of the friction model used for this system. Experimental results show that the friction coefficient is not influenced by the nanostructure of the films nor by the relative humidity. On the other hand the adhesi...
Friction has long been the subject of research: the empirical da Vinci-Amontons friction laws have b...
In this work, an experimental investigation of the nanomechanical properties of flame-formed carbona...
Metal containing amorphous hydrocarbon films (Me-C:H) have excellent tribological properties and an ...
Reduction of friction at very low normal loads and for very small contact areas is important for the...
A Nanoscope III atomic force microscope (AFM) was used to measure the friction between glassy carbon...
Quantitative adhesion and friction properties of Vertically Aligned Multiwalled Carbon Nanotubes (VA...
The authors describe a novel approach to the measurement of nanofriction, and demonstrate the applic...
Single asperity friction experiments using atomic force microscopy (AFM) have been conducted on chem...
A lack of understanding of the fundamental mechanisms governing atomic-scale adhesion and friction c...
We present molecular dynamics (MD) friction and adhesion calculations for nanometer-thick confined h...
A lack of understanding of the fundamental mechanisms governing atomic-scale adhesion and friction c...
Sliding friction and adhesion properties of vertically aligned multi-walled carbon nanotube (VAMWCNT...
Diamond-like carbon (DLC) is a unique material that exhibits both low friction and high hardness. Th...
The Atomic Force Microscope (AFM) is an instrument that is capable of measuring intermolecular force...
Nanoscale friction often exhibits hysteresis when load is increased (loading) and then decreased (un...
Friction has long been the subject of research: the empirical da Vinci-Amontons friction laws have b...
In this work, an experimental investigation of the nanomechanical properties of flame-formed carbona...
Metal containing amorphous hydrocarbon films (Me-C:H) have excellent tribological properties and an ...
Reduction of friction at very low normal loads and for very small contact areas is important for the...
A Nanoscope III atomic force microscope (AFM) was used to measure the friction between glassy carbon...
Quantitative adhesion and friction properties of Vertically Aligned Multiwalled Carbon Nanotubes (VA...
The authors describe a novel approach to the measurement of nanofriction, and demonstrate the applic...
Single asperity friction experiments using atomic force microscopy (AFM) have been conducted on chem...
A lack of understanding of the fundamental mechanisms governing atomic-scale adhesion and friction c...
We present molecular dynamics (MD) friction and adhesion calculations for nanometer-thick confined h...
A lack of understanding of the fundamental mechanisms governing atomic-scale adhesion and friction c...
Sliding friction and adhesion properties of vertically aligned multi-walled carbon nanotube (VAMWCNT...
Diamond-like carbon (DLC) is a unique material that exhibits both low friction and high hardness. Th...
The Atomic Force Microscope (AFM) is an instrument that is capable of measuring intermolecular force...
Nanoscale friction often exhibits hysteresis when load is increased (loading) and then decreased (un...
Friction has long been the subject of research: the empirical da Vinci-Amontons friction laws have b...
In this work, an experimental investigation of the nanomechanical properties of flame-formed carbona...
Metal containing amorphous hydrocarbon films (Me-C:H) have excellent tribological properties and an ...