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- W4200068135 abstract "We present a multi-scale computational framework suitable for designing solid lubricant interfaces fully in silico. The approach is based on stochastic thermodynamics founded on the classical thermally activated two-dimensional Prandtl-Tomlinson model, linked with First Principles methods to accurately capture the properties of real materials. It allows investigating the energy dissipation due to friction in materials as it arises directly from their electronic structure, and naturally accessing the time-scale range of a typical friction force microscopy. This opens new possibilities for designing a broad class of material surfaces with atomically tailored properties. We apply the multi-scale framework to a class of two-dimensional layered materials and reveal a delicate interplay between the topology of the energy landscape and dissipation that known static approaches based solely on the energy barriers fail to capture." @default.
- W4200068135 created "2021-12-31" @default.
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- W4200068135 date "2021-12-13" @default.
- W4200068135 modified "2023-10-18" @default.
- W4200068135 title "Multi‐scale model predicting friction of crystalline materials" @default.
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- W4200068135 doi "https://doi.org/10.1002/admi.202100914" @default.
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