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A Novel Dual-Step Nucleation Pathway in Crystalline Solids under Neutron Irradiation

机译:中子辐照下结晶固体中的新型双步成核途径

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摘要

Innovations in nanostructuring of inorganic crystalline solids are often limited by prerequisite critical nucleation energy and solute supersaturation for formation of a phase. This research provides direct evidence supporting the viability of an unconventional irradiation-induced nanostructuring process, via transmission electron microscopy, that circumvents these preconditions. Using polymorphic silicon carbide (SiC) as a prototype, a surprising two-step nucleation route is demonstrated through which nanoscale distribution of the second phase is achieved by reaction of solutes with neutron irradiation-induced precursors. In the first step, nanoscale α–SiC precipitates in a β–SiC matrix unexpectedly nucleate heterogeneously at structural defects. This occurs at significantly lower temperatures compared with the usual β→α transition temperature. Subsequently, α–SiC precipitate acts as a surrogate template for its structural and compositional transition into a fission product precipitate, palladium silicide. These discoveries provide a modern view of irradiation engineering in polymorphic ceramics for advanced applications.
机译:无机结晶固体纳米结构的创新通常受到先决条件的关键成核能和形成相的溶质过饱和的限制。这项研究提供了直接的证据,证明了通过透射电子显微术规避这些先决条件的非常规辐射诱导的纳米结构过程的可行性。使用多晶碳化硅(SiC)作为原型,展示了令人惊讶的两步成核途径,通过该过程,溶质与中子辐照诱发的前体反应可实现第二相的纳米级分布。第一步,在结构缺陷处,纳米级α-SiC沉淀物在β-SiC基质中意外地异质形核。与通常的β→α转变温度相比,这发生在明显更低的温度下。随后,α-SiC沉淀物充当替代模板,用于其结构和组成转变为裂变产物沉淀物硅化钯。这些发现为先进应用提供了多晶型陶瓷辐照工程的现代观点。

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