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纳米结构锗表面局部弹性性质的测绘:从纳米多孔海绵到自组织纳米点。

Mapping the local elastic properties of nanostructured germanium surfaces: from nanoporous sponges to self-organized nanodots.

机构信息

Institute of Ion Beam Physics and Materials Research, Helmholtz-Zentrum Dresden-Rossendorf, Dresden, Germany.

出版信息

Nanotechnology. 2013 Mar 22;24(11):115702. doi: 10.1088/0957-4484/24/11/115702. Epub 2013 Feb 28.

DOI:10.1088/0957-4484/24/11/115702
PMID:23449092
Abstract

Due to their reduced dimensions, the mechanical properties of nanostructures may differ substantially from those of bulk materials. Quantifying and understanding the nanomechanical properties of individual nanostructures is thus of tremendous importance both from a fundamental and a technological point of view. Here we employ a recently introduced atomic force microscopy mode, i.e., peak-force quantitative nanomechanical imaging, to map the local elastic properties of nanostructured germanium surfaces. This imaging mode allows the quantitative determination of the Young's modulus with nanometer resolution. Heavy-ion irradiation was used to fabricate different self-organized nanostructures on germanium surfaces. Depending on the sample temperature during irradiation, nanoporous sponge-like structures and hexagonally ordered nanodots are obtained. The sponge-like germanium surface is found to exhibit a surprisingly low Young's modulus well below 10 GPa, which furthermore depends on the ion energy. For the nanodot patterns, local variations in the Young's modulus are observed: at moderate sample temperatures, the dot crests have a lower modulus than the dot valley whereas this situation is reversed at high temperatures. These observations are explained by vacancy dynamics in the amorphous germanium matrix during irradiation. Our results furthermore offer the possibility to tune the local elastic properties of nanostructured germanium surfaces by adjusting the ion energy and sample temperature.

摘要

由于其尺寸较小,纳米结构的机械性能可能与体材料有很大的不同。因此,从基础和技术的角度来看,量化和理解单个纳米结构的纳米力学性能是非常重要的。在这里,我们采用了一种新引入的原子力显微镜模式,即峰值力定量纳米力学成像,来绘制纳米结构锗表面的局部弹性性质。这种成像模式可以以纳米分辨率定量确定杨氏模量。重离子辐照用于在锗表面上制造不同的自组织纳米结构。根据辐照过程中的样品温度,会得到纳米多孔海绵状结构和六方有序纳米点。令人惊讶的是,发现海绵状锗表面的杨氏模量非常低,远低于 10GPa,并且还取决于离子能量。对于纳米点图案,观察到杨氏模量的局部变化:在中等的样品温度下,与纳米点谷相比,纳米点峰的模量较低,而在高温下则相反。这些观察结果是通过辐照过程中非晶硅基质中的空位动力学来解释的。我们的结果还提供了通过调整离子能量和样品温度来调整纳米结构锗表面局部弹性性质的可能性。

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Nanomechanical characterization of nanostructured bainitic steel: Peak Force Microscopy and Nanoindentation with AFM.纳米结构贝氏体钢的纳米力学表征:峰值力显微镜和原子力显微镜纳米压痕
Sci Rep. 2015 Nov 25;5:17164. doi: 10.1038/srep17164.