Department of Physics, Izmir Institute of Technology, Urla, Izmir 35430, Turkey.
Phys Chem Chem Phys. 2018 Jun 27;20(25):17289-17303. doi: 10.1039/c8cp02422g.
To avoid unexpected environmental mechanical failure, there is a strong need to fully understand the details of the oxidation process and intrinsic mechanical properties of reactive metallic iron (Fe) nanowires (NWs) under various aqueous reactive environmental conditions. Herein, we employed ReaxFF reactive molecular dynamics (MD) simulations to elucidate the oxidation of Fe NWs exposed to molecular water (H2O) and hydrogen peroxide (H2O2) environment, and the influence of the oxide shell layer on the tensile mechanical deformation properties of Fe NWs. Our structural analysis shows that oxidation of Fe NWs occurs with the formation of different iron oxide and hydroxide phases in the aqueous molecular H2O and H2O2 oxidizing environments. We observe that the resulting microstructure due to pre-oxide shell layer formation reduces the mechanical stress via increasing the initial defect sites in the vicinity of the oxide region to facilitate the onset of plastic deformation during tensile loading. Specifically, the oxide layer of Fe NWs formed in the H2O2 environment has a relatively significant effect on the deterioration of the mechanical properties of Fe NWs. The weakening of the yield stress and Young modulus of H2O2 oxidized Fe NWs indicates the important role of local oxide microstructures on mechanical deformation properties of individual Fe NWs. Notably, deformation twinning is found as the primary mechanical plastic deformation mechanism of all Fe NWs, but it is initially observed at low strain and stress level for the oxidized Fe NWs.
为了避免意外的环境机械故障,强烈需要充分了解在各种水反应性环境条件下反应性金属铁(Fe)纳米线(NWs)的氧化过程和固有机械性能的细节。在此,我们采用 ReaxFF 反应分子动力学(MD)模拟来阐明暴露于分子水(H2O)和过氧化氢(H2O2)环境的 Fe NWs 的氧化,以及氧化壳层对 Fe NWs 的拉伸力学变形性能的影响。我们的结构分析表明,在水相分子 H2O 和 H2O2 氧化环境中,Fe NWs 的氧化会形成不同的铁氧化物和氢氧化物相。我们观察到,由于预氧化物壳层的形成导致的微观结构变化通过在氧化物区域附近增加初始缺陷位来降低机械应力,从而促进在拉伸加载过程中发生塑性变形。具体而言,在 H2O2 环境中形成的 Fe NWs 的氧化层对 Fe NWs 力学性能的恶化具有相对显著的影响。H2O2 氧化的 Fe NWs 的屈服应力和杨氏模量的降低表明局部氧化物微观结构对单个 Fe NWs 的力学变形性能的重要作用。值得注意的是,变形孪晶被发现是所有 Fe NWs 的主要机械塑性变形机制,但对于氧化的 Fe NWs,最初在低应变和应力水平下观察到。