Matches in SemOpenAlex for { <https://semopenalex.org/work/W121733154> ?p ?o ?g. }
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- W121733154 abstract "The mechanisms responsible for friction at the atomic scale can sometimes be quite different from those that dominate at the macroscale. This has implications for devices such as magnetic storage disks, that have been shrinking in size steadily over the last few years and are approaching the nanometer regime where atomicscale friction, adhesion, and wear will be the dominant processes. Sometimes the frictional properties of materialsmeasured on the atomic scale do not always show agreement with macroscale measurements as was the case in the nitrogen implantation of diamond. In addition, the discussed experiments and simulations use different numbers off tips that have varying lengths and mechanical properties, making direct comparisons of the data difficult. Atomistic simulations have provided much-needed insight into the mechanisms of atomic-scale friction and operate well on atomic-scale time and length scales. However, it is difficult to compare the results to experimental data due to time-scale and system size mismatches between the two. It has been noted that the coefficient of friction is a way to describe the sum of all the atomic-scale interactions taking place at an interface when all the details are not known. However, the atomic-scale details are important, because they can lead to wide variations in the coefficient of friction for the same interface system. The research on atomic-scale friction summarized here shows how such things as the geometry of the interface, the velocity of sliding, the temperature of the system, the length scale of the measurements, and the chemistry at the interface affect the relationship between the applied normal load and the frictional forces at the interface." @default.
- W121733154 created "2016-06-24" @default.
- W121733154 creator A5058360244 @default.
- W121733154 date "2000-01-01" @default.
- W121733154 modified "2023-09-27" @default.
- W121733154 title "Theory of atomic-scale friction" @default.
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