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Atomic force microscopy study of nanoindentation deformation and indentation size effect in MgO crystals

机译:MgO晶体中纳米压痕变形和压痕尺寸效应的原子力显微镜研究

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The dependences of various nanoindentation parameters, such as depth of penetration d indentation diameter a, deformation zone radius R, and height h of hills piled up around indents, on applied load were investigated for the initial (unrecovered) stage of indentation of the (l00) cleavage faces of MgO crystals by square pyramida1 Si tips for loads up to l0 mu N using atomic force microscopy. The experimental data are analyzed using theories of elastic and plastic deformation. The results revealed that (i) a, R, and h linearly increase with d: (ii) the development of indentation size and deformation zone and the formation of hills are two different processes; (iii) the load dependence of nanohardness shows the normal indentation size effect (i.e., the hardness increases with a decrease in load); and (iv) there is an absence of plastic deformation involving the formation of slip lines around the indentations. It is found that Johnson's cavity model of elastic-plastic boundary satisfactorily explains the experimental data. The formation of hills around indentations is also consistent with a new model (i.e., indentation crater model) based on the concept of piling up of material of indentation cavity as hills.
机译:对于(l00)压痕的初始(未恢复)阶段,研究了各种纳米压痕参数,例如穿透深度d压痕直径a,变形区半径R和在压痕周围堆积的丘陵的高度h对施加的载荷的依赖性。 )用原子力显微镜通过方金字塔形的Si尖端切割MgO晶体的表面,以承受高达10μN的载荷。利用弹性和塑性变形理论分析了实验数据。结果表明:(i)a,R和h随着d线性增加:(ii)压痕尺寸和变形区的发展以及山丘的形成是两个不同的过程; (iii)纳米硬度对载荷的依赖性显示出正常的压痕尺寸效应(即,硬度随着载荷的降低而增加); (iv)不存在涉及在凹痕周围形成滑移线的塑性变形。发现约翰逊的弹塑性边界腔模型可以令人满意地解释实验数据。压痕周围的山丘的形成也与基于压痕腔的材料堆积为山丘的概念的新模型(即压痕坑模型)相一致。

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