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PNAS Plus: Visualizing the iron atom exchange front in the Fe(II)-catalyzed recrystallization of goethite by atom probe tomography

机译:PNAS Plus:通过原子探针层析成像技术观察铁(II)催化针铁矿重结晶中的铁原子交换前沿

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摘要

The autocatalytic redox interaction between aqueous Fe(II) and Fe(III)-(oxyhydr)oxide minerals such as goethite and hematite leads to rapid recrystallization marked, in principle, by an atom exchange (AE) front, according to bulk iron isotopic tracer studies. However, direct evidence for this AE front has been elusive given the analytical challenges of mass-resolved imaging at the nanoscale on individual crystallites. We report successful isolation and characterization of the AE front in goethite microrods by 3D atom probe tomography (APT). The microrods were reacted with Fe(II) enriched in tracer 57Fe at conditions consistent with prior bulk studies. APT analyses and 3D reconstructions on cross-sections of the microrods reveal an AE front that is spatially heterogeneous, at times penetrating several nanometers into the lattice, in a manner consistent with defect-accelerated exchange. Evidence for exchange along microstructural domain boundaries was also found, suggesting another important link between exchange extent and initial defect content. The findings provide an unprecedented view into the spatial and temporal characteristics of Fe(II)-catalyzed recrystallization at the atomic scale, and substantiate speculation regarding the role of defects controlling the dynamics of electron transfer and AE interaction at this important redox interface.
机译:根据大量铁同位素示踪剂,Fe(II)水溶液和Fe(III)-(羟基)氧化物矿物(如针铁矿和赤铁矿)之间的自催化氧化还原相互作用导致快速重结晶,原则上以原子交换(AE)前沿为特征学习。然而,鉴于在纳米级上对单个微晶进行质量分辨成像的分析难题,对于这种AE前沿的直接证据一直难以捉摸。我们报告成功隔离和表征针铁矿微棒中的AE锋面通过3D原子探针层析成像(APT)。在与先前的大量研究一致的条件下,将微棒与富含示踪剂 57 Fe的Fe(II)反应。 APT分析和微棒横截面的3D重建显示出AE前沿在空间上是异质的,有时以与缺陷加速交换一致的方式渗透到晶格中几纳米。还发现了沿微结构域边界进行交换的证据,这表明了交换程度和初始缺陷含量之间的另一个重要联系。这些发现为原子级的Fe(II)催化重结晶的时空特征提供了空前的见解,并证实了缺陷在此重要的氧化还原界面上控制电子转移和AE相互作用动力学的作用的推测。

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