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- W1572508162 abstract "Friction between two solids is not only one of the most common, but also one of the most complex and least understood processes in nature [11.1]. At rough interfaces, plastic deformations and abrasion — both associated with the re-arrangement of interatomic bonds — are responsible for energy dissipation during the relative motion of the two solids. A fundamentally different behavior is observed at “perfect”, weakly-interacting interfaces. There, friction without wear corresponds to energy transfer from macroscopic degrees of freedom (describing the relative motion of the bodies in contact) to microscopic degrees of freedom (such as phonons or electronic excitations) which occur as heat. Considerable success has been achieved recently in the quantitative measurement of friction forces on the atomic scale [11.2] and the understanding of the underlying microscopic mechanisms in the case of sliding friction without wear [11.3]. This success has been made possible by an increasing sophistication in the characterization of interfaces, from the use of rather rough interfaces [11.4, 5] to atomically flat areas [11.6], and imaginative adaptations of the Scanning Force Microscope (SFM) [11.7] for friction measurements. On the other hand, rapid development of computational techniques and the availability of large computer resources have made quantitative predictions for the friction process possible [11.8, 9]. The success on both the experimental and theoretical side has opened up a new research field called nanotribology." @default.
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- W1572508162 date "1996-01-01" @default.
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- W1572508162 title "Theory of Atomic-Scale Friction" @default.
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- W1572508162 doi "https://doi.org/10.1007/978-3-642-80118-1_11" @default.
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