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Corrosion-induced microstructure degradation of copper in sulfide-containing simulated anoxic groundwater studied by synchrotron high-energy X-ray diffraction and ab-initio density functional theory calculation

机译:通过同步高能X射线衍射和AB-initio密度泛函理论计算研究含硫化硫化物模拟缺氧地下水中铜中铜的微观结构劣化

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Synchrotron high-energy XRD measurements and ab-initio DFT calculations were employed to investigate microstructural degradation of copper upon exposure to sulfide-containing anoxic groundwater simulating nuclear waste repository. After two-month exposure, the high-energy XRD measurements revealed heterogeneous lattice deformation in the microstructure and lattice expansion in near-surface regions. The DFT calculations show that sulfur promotes hydrogen adsorption on copper. Water causes surface reconstruction and promotes hydrogen insertion into the microstructure, occurring via interstitial sites next to vacancies leading to lattice dilation and metal bond weakening. Hydrogen infusion in the presence of sulfur caused lattice degradation, indicating a risk for H-induced cracking.
机译:使用同步高能量XRD测量和AB-Initio DFT计算来研究铜制含硫化物氧氧基地下水模拟核废料库时的微观结构降解。 在为期30个月的曝光后,高能XRD测量显示在近表面区域的微观结构和晶格膨胀中的异质晶格变形。 DFT计算表明,硫促进了铜对铜的吸附。 水导致表面重建并促进氢气插入微观结构,通过空位旁边的空白位点发生,导致格子扩张和金属键弱化。 硫在硫的存在下导致晶格降解,表明H诱导裂化的风险。

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