Bayerisches Geoinstitut, Universität Bayreuth, Universitätsstrasse 30, D-95447, Bayreuth, Germany.
M. N. Miheev Institute of Metal Physics of Ural Branch of Russian Academy of Sciences, 18 S. Kovalevskaya Str., Yekaterinburg 620137, Russia.
Dalton Trans. 2023 May 2;52(17):5563-5574. doi: 10.1039/d3dt00381g.
We synthesized single and polycrystals of iron oxide with an unconventional FeO stoichiometry under high-pressure high-temperature (HP-HT) conditions. The crystals of FeO had a CaFeO-type structure composed of linear chains of iron with octahedral and trigonal-prismatic oxygen coordinations. We investigated the electronic properties of this mixed-valence oxide using several experimental techniques, including measurements of electrical resistivity, the Hall effect, magnetoresistance, and thermoelectric power (Seebeck coefficient), X-ray absorption near edge spectroscopy (XANES), reflectance and absorption spectroscopy, and single-crystal X-ray diffraction. Under ambient conditions, the single crystals of FeO demonstrated a semimetal electrical conductivity with nearly equal partial contributions of electrons and holes ( ≈ ), in line with the nominal average oxidation state of iron as Fe. This finding suggests that both the octahedral and trigonal-prismatic iron cations contribute to the electrical conductivity of FeO an Fe/Fe polaron hopping mechanism. A moderate deterioration of crystal quality shifted the dominant electrical conductivity to n-type and considerably worsened the conductivity. Thus, alike magnetite, FeO with equal numbers of Fe and Fe ions can serve as a prospective model for other mixed-valence transition-metal oxides. In particular, it could help in the understanding of the electronic properties of other recently discovered mixed-valence iron oxides with unconventional stoichiometries, many of which are not recoverable to ambient conditions; it can also help in designing novel more complex mixed-valence iron oxides.
我们在高温高压 (HP-HT) 条件下合成了具有非常规 FeO 化学计量比的单晶体和多晶体的氧化铁。FeO 晶体具有 CaFeO 型结构,由铁的线性链组成,具有八面体和三角棱柱氧配位。我们使用几种实验技术研究了这种混合价氧化物的电子性质,包括电阻率、霍尔效应、磁阻和热电功率 (塞贝克系数)、X 射线吸收近边光谱 (XANES)、反射率和吸收光谱以及单晶 X 射线衍射的测量。在环境条件下,FeO 的单晶表现出半金属电导率,其中电子和空穴的部分贡献几乎相等 ( ≈ ),与铁的名义平均氧化态 Fe 一致。这一发现表明,八面体和三角棱柱铁阳离子都对 FeO 的电导率有贡献,Fe/Fe 极化子跳跃机制。晶体质量的适度恶化将主导电导率转变为 n 型,并大大恶化电导率。因此,与磁铁矿一样,具有相同数量的 Fe 和 Fe 离子的 FeO 可以作为其他混合价过渡金属氧化物的理想模型。特别是,它有助于理解其他最近发现的具有非常规化学计量比的混合价氧化铁的电子性质,其中许多在环境条件下无法恢复;它也有助于设计新型更复杂的混合价氧化铁。