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Microstructural investigation of iron nitride layers formed by low-temperature gaseous nitriding

机译:低温气态氮化形成氮化铁层的显微组织研究

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Iron nitride layers were formed by a novel low-temperature gaseous nitriding process. Nitriding occurs at a temperature of 325 deg. C through NH_3 decomposition at the surface of Ni (25 nm) coated Fe, followed by N transport through the Ni film into the underlying Fe, where nitride precipitation takes place. The role of Ni is to protect Fe from oxidation by gas impurities and to serve as a catalyst for NH_3 decomposition. The precipitation behavior and the development of microstructure were studied by means of elastic recoil detection, cross-sectional transmission electron diffraction (XTEM), and positron annihilation (PA). From PA and XTEM no evidence was found for the occurrence of porosity during nitriding (an effect found at higher temperatures due to the decomposition of the nitrides into Fe and N_2). XTEM showed that the original columnar α-Fe graons transform into smaller γ-Fe_4 grains which subsequently transform into larger ε-Fe_3-xN grains. This microstructural evolution of smaller gamma grains forming in the original columnar alpha-Fe structure occurs in one of two growth modes of the nitride in the Fe layer, i.e., throughout the entire depth range of the Fe layer, or preferentially at the Ni/Fe interface when an iron oxide layer is present at this interface.
机译:通过新颖的低温气态氮化工艺形成氮化铁层。渗氮温度为325度。 C通过NH_3在涂覆有Ni的Ni(25 nm)的表面分解,然后N通过Ni膜传输到下面的Fe中,在该处发生氮化物沉淀。 Ni的作用是保护Fe免受气体杂质氧化并充当NH_3分解的催化剂。通过弹性反冲检测,截面透射电子衍射(XTEM)和正电子an没(PA)研究了沉淀行为和微观结构的发展。从PA和XTEM中,没有发现氮化过程中发生气孔的证据(由于氮化物分解成Fe和N_2,在较高温度下会发现这种作用)。 XTEM表明原始的柱状α-Fe晶粒转变为较小的γ-Fe_4晶粒,随后转变为较大的ε-Fe_3-xN晶粒。在原始柱状α-Fe结构中形成的较小γ晶粒的这种微观结构演变发生在Fe层中氮化物的两种生长模式之一中,即在Fe层的整个深度范围内,或者优先在Ni / Fe处当在该界面上存在氧化铁层时,界面。

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