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Facet-selective adsorption of Fe(ii) on hematite visualized by nanoscale secondary ion mass spectrometry

机译:纳米级二次离子质谱法可视化赤铁矿Fe(II)的刻面吸附

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摘要

Facet-specific reactivity of metal oxide particles is a well-known but at times difficult to probe phenomenon. Furthermore, in semiconductor metal oxides where crystal facets enclosing particles are electrically connected, separating them to enable detailed characterization defeats the purpose; the study of intact individual crystallites is necessary. Here we develop a mass-sensitive imaging approach to do so, and demonstrate its potential by unveiling the preferential binding of Fe(ii) to various surfaces of the Fe(iii) oxide hematite. Using isotopic tracers to follow iron provenance, Fe-56-hematite microplatelets with various enclosing facets are reacted with aqueous Fe-57(ii) at circumneutral pH. The resulting distribution of Fe-57 across the hematite surfaces is directly visualized and quantified using nanoscale secondary ion mass spectrometry (NanoSIMS). The results unambiguously show Fe(ii) sorption is highly selective for the basal (001) surface, while edge surfaces such as (012) and (110) are enriched to a lesser extent (up to 10x lower). Crystal intergrowth defects exposing poorly-ordered, nanoscale surface structures show the least enrichment. These results resolving Fe(ii)-Fe(iii) reaction fronts across multi-facetted crystals provide a clear correlation between uptake and particle surface structure. The illustrated approach to understanding facet-specific ion uptake is also likely generalizable to other interfacial processes such as electron transfer and heterogeneous catalysis, across a broad range of particle and thin-film based systems.
机译:金属氧化物颗粒的刻面特异性反应性是众所周知的,但有时难以探测现象。此外,在封闭颗粒的晶面电连接的半导体金属氧化物中,将它们分离以实现详细表征击败目的;对完整的个体微晶的研究是必要的。在这里,我们通过将Fe(II)的优先结合揭开Fe(III)氧化赤铁矿的各种表面来制定致敏感的成像方法,并证明其电位。使用同位素示踪剂跟随铁处理,具有各种封闭刻面的Fe-56-赤铁矿微薄基团与循环pH的Fe-57(II)反应。通过纳米级二次离子质谱法(纳米粒子)直接可视化和量化赤铁矿表面的Fe-57的分布。结果明确地显示Fe(II)吸附对基底(001)表面具有高度选择性,而诸如(012)和(110)的边缘表面富含较小程度(高达10倍)。纳米级表面结构曝光较低的晶体晶间缺陷,呈现最少的富集。这些结果解决了跨多面晶体的Fe(II)-Fe(III)反应前线提供了摄取和颗粒表面结构的明显相关性。所示的理解面部特异性离子吸收的方法也可能跨越诸如电子转移和异质催化的其他界面过程,横跨粒子和薄膜基体系。

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