Suppression of material transfer at contacting surfaces: The effect of adsorbates on Al/TiN and Cu/diamond interfaces from first-principles calculations
arXiv:1703.09974 · doi:10.1088/1361-648X/aaac91
Abstract
The effect of monolayers of oxygen (O) and hydrogen (H) on the possibility of material transfer at aluminium/titanium nitride (Al/TiN) and copper/diamond (Cu/C) interfaces, respectively, were investigated within the framework of density functional theory (DFT). To this end the approach, contact, and subsequent separation of two atomically flat surfaces consisting of the aforementioned pairs of materials were simulated. These calculations were performed for the clean as well as oxygenated and hydrogenated Al and C surfaces, respectively. Various contact configurations were considered by studying several lateral arrangements of the involved surfaces at the interface. Material transfer is typically possible at interfaces between the investigated clean surfaces; however, the addition of O to the Al and H to the C surfaces was found to hinder material transfer. This passivation occurs because of a significant reduction of the adhesion energy at the examined interfaces, which can be explained by the distinct bonding situations.
27 pages, 8 figures
References in corpus (8)
- Insight into the description of van der Waals forces for benzene adsorption on transition metal (111) surfaces
- Frictional figures of merit for single layered nanostructures
- Effects of van der Waals Interactions in the Adsorption of Isooctane and Ethanol on Fe(100) Surfaces
- PtZr(0001): A substrate for growing well-ordered ultrathin zirconia films by oxidation
- Thermostat Influence on the Structural Development and Material Removal during Abrasion of Nanocrystalline Ferrite
- Adhesion and material transfer between contacting Al and TiN surfaces from first principles
- Ab-initio friction forces on the nanoscale: A DFT study of fcc Cu(111)
- Ab-initio calculation of the real contact area on the atomic scale