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Molecular species forming at the α-Fe2O3 nanoparticle–aqueous solution interface

机译:在α-Fe2O3纳米颗粒-水溶液界面形成的分子种类

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摘要

We report on electronic structure measurements of the interface between hematite nanoparticles (6 nm diameter) and aqueous solutions. Using soft X-ray photoelectron spectroscopy from a liquid microjet we detect valence and core-level photoelectrons as well as Auger electrons from liquid water, from the nanoparticle–water interface, and from the interior of the aqueous-phase nanoparticles. Most noteworthy, the method is shown to be sufficiently sensitive for the detection of adsorbed hydroxyl species, resulting from H2O dissociation at the nanoparticle surface in aqueous solution. We obtain signal from surface OH from resonant, non-resonant, and from so-called partial-electron-yield X-ray absorption (PEY-XA) spectra. In addition, we report resonant photoelectron measurements at the iron 2p excitation. The respective Fe iron 2p3/2 edge (L3-edge) PEY-XA spectra exhibit two main absorption peaks with their energies being sensitive to the chemical environment of the Fe3+ ions at the nanoparticle–solution interface. This manifests in the 10Dq value which is a measure of the ligand-field strength. Furthermore, an observed intensity variation of the pre-peak, when comparing the PEY-XA spectra for different iron Auger-decay channels, can be assigned to different extents of electron delocalization. From the experimental fraction of local versus non-local autoionization signals we then find a very fast, approximately 1 fs, charge transfer time from interfacial Fe3+ into the environment. The present study, which is complementary to ambient-pressure photoemission studies on solid-electrolyte systems, also highlights the multiple aspects of photoemission that need to be explored for a full characterization of the transition-metal-oxide nanoparticle surface in aqueous phase.
机译:我们报告了赤铁矿纳米粒子(直径6 nm)与水溶液之间的界面的电子结构测量结果。使用来自液体微型喷嘴的软X射线光电子能谱,我们可以检测液态水,纳米粒子与水的界面以及水相纳米粒子内部的化合价和核能级光电子以及俄歇电子。最值得注意的是,该方法显示出对检测吸附的羟基物种足够灵敏的原因,这是由于水溶液中纳米颗粒表面的H2O离解所致。我们从表面OH从共振,非共振以及所谓的部分电子屈服X射线吸收(PEY-XA)光谱中获得信号。此外,我们报告了在铁2p激发下的共振光电子测量。相应的铁铁2p3 / 2边缘(L3-边缘)PEY-XA光谱显示两个主要吸收峰,其能量对纳米颗粒-溶液界面处的Fe 3 + 离子的化学环境敏感。这体现在10Dq值上,该值是对配体场强的度量。此外,在比较不同铁俄歇衰变通道的PEY-XA光谱时,观察到的峰前强度变化可以分配给电子离域程度不同。从局部和非局部自电离信号的实验部分中,我们发现从界面Fe 3 + 到环境的电荷转移时间非常快,约为1 fs。本研究是对固体电解质系统中环境压力​​光发射研究的补充,它还强调了光发射的多个方面,需要对水相中过渡金属氧化物纳米颗粒表面的完整表征进行探索。

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