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The origins of chemomechanical effects in the low-load indentation hardness and tribology of ceramic materials

机译:陶瓷材料的低负荷压痕硬度和摩擦学的化学机械效应的起源

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We have used high-resolution techniques (nanoindentation, atomic force microscopy) to further isolate and identify environmental effects previously reported as possibly affecting both the microindentation response of a range of ceramic materials and their tribological behaviour. In order to make meaningful comparisons, these new experiments have been conducted alongside conventional Knoop and Vickers microhardness experiments conducted under identical conditions on the same samples. A range of polycrystalline, single crystal and amorphous ceramic materials have been studied including some only available as coatings. Our results show that thin adsorbate-modified layers (of dimensions similar to 1 nm) are almost invariably present on all the materials studied but their presence is not directly identifiable even by nanoindentation in most cases even if it does affect friction response. However, in crystalline materials, [ sapphire and ZnO], we have been able to distinguish a further softening effect seen as a thicker layer (tens of nm) and believed associated with an adsorption-induced near-surface band-structure change affecting the motion of charged dislocations. This produces a measurable softening that is clearly evident in nanoindentation tests but less clear in microindentation tests. Finally, we present conclusions on the suitability of indentation testing for studying these phenomena, together with the implications of chemomechanical effects for influencing tribological performance and, thus, materials selection.
机译:我们已使用高分辨率技术(纳米压痕,原子力显微镜)进一步隔离和鉴定了先前报道的可能影响一系列陶瓷材料的微压痕响应及其摩擦学行为的环境影响。为了进行有意义的比较,这些新实验与在相同条件下对相同样品进行的常规努氏和维氏显微硬度实验一起进行。已经研究了多种多晶,单晶和非晶陶瓷材料,包括仅可作为涂层的一些材料。我们的结果表明,薄薄的吸附物改性层(尺寸近似于1 nm)几乎始终存在于所有研究的材料上,但是即使在大多数情况下,即使确实影响摩擦响应,也不能通过纳米压痕直接识别它们的存在。但是,在晶体材料(蓝宝石和ZnO)中,我们已经能够分辨出进一步的软化效果,即较厚的层(几十纳米),并且认为与影响运动的吸附引起的近表面能带结构变化有关带电的脱位。这会产生可测量的软化,这种软化在纳米压痕测试中显而易见,而在微压痕测试中则不太明显。最后,我们提出了压痕测试是否适合研究这些现象的结论,以及化学机械效应对摩擦学性能和材料选择的影响。

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