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一系列块状铁氧化物中过量电子和空穴的极化子结构。

Polaronic structure of excess electrons and holes for a series of bulk iron oxides.

作者信息

Ahart Christian S, Blumberger Jochen, Rosso Kevin M

机构信息

Department of Physics and Astronomy, University College London, London WC1E 6BT, UK.

出版信息

Phys Chem Chem Phys. 2020 May 21;22(19):10699-10709. doi: 10.1039/c9cp06482f. Epub 2020 Feb 24.

Abstract

Iron oxides such as hematite (α-FeO) play an important role in diverse fields ranging from biogeochemistry to photocatalysis. Here we perform calculations of both the electron and electron hole polaron structures and associated reorganisation energies for a series of bulk iron oxides: hematite (α-FeO), lepidocrocite (γ-FeOOH), goethite (α-FeOOH) and white rust (Fe(OH)). Through the use of gap-optimized hybrid functionals and large supercells under periodic boundary conditions, we remove some of the complications and uncertainties present in earlier cluster model calculations. It is found that while the electron hole polaron in these materials generally localises onto a single iron site, the electron polaron localises across two iron sites of the same spin layer as a consequence of the lower reorganisation energy for electrons compared to holes. An exception to these trends is the hole of goethite, which according to our calculations does not form a localised polaron.

摘要

诸如赤铁矿(α-Fe₂O₃)之类的氧化铁在从生物地球化学到光催化等多个领域都发挥着重要作用。在此,我们对一系列块状氧化铁:赤铁矿(α-Fe₂O₃)、纤铁矿(γ-FeOOH)、针铁矿(α-FeOOH)和白锈(Fe(OH)₃)的电子和电子空穴极化子结构以及相关的重组能进行了计算。通过使用在周期性边界条件下的能隙优化杂化泛函和大型超胞,我们消除了早期团簇模型计算中存在的一些复杂性和不确定性。结果发现,虽然这些材料中的电子空穴极化子通常定域在单个铁位点上,但由于电子的重组能比空穴低,电子极化子定域在同一自旋层的两个铁位点上。这些趋势的一个例外是针铁矿的空穴,根据我们的计算,它不会形成局域极化子。

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