Centre for Science at Extreme Conditions and School of Chemistry, University of Edinburgh, West Mains Road, Edinburgh EH9 3JZ, UK.
Nature. 2011 Dec 21;481(7380):173-6. doi: 10.1038/nature10704.
The mineral magnetite (Fe(3)O(4)) undergoes a complex structural distortion and becomes electrically insulating at temperatures less than 125 kelvin. Verwey proposed in 1939 that this transition is driven by a charge ordering of Fe(2+) and Fe(3+) ions, but the ground state of the low-temperature phase has remained contentious because twinning of crystal domains hampers diffraction studies of the structure. Recent powder diffraction refinements and resonant X-ray studies have led to proposals of a variety of charge-ordered and bond-dimerized ground-state models. Here we report the full low-temperature superstructure of magnetite, determined by high-energy X-ray diffraction from an almost single-domain, 40-micrometre grain, and identify the emergent order. The acentric structure is described by a superposition of 168 atomic displacement waves (frozen phonon modes), all with amplitudes of less than 0.24 ångströms. Distortions of the FeO(6) octahedra show that Verwey's hypothesis is correct to a first approximation and that the charge and Fe(2+) orbital order are consistent with a recent prediction. However, anomalous shortening of some Fe-Fe distances suggests that the localized electrons are distributed over linear three-Fe-site units, which we call 'trimerons'. The charge order and three-site distortions induce substantial off-centre atomic displacements and couple the resulting large electrical polarization to the magnetization. Trimerons may be important quasiparticles in magnetite above the Verwey transition and in other transition metal oxides.
磁铁矿(Fe3O4)在低于 125 开尔文的温度下经历复杂的结构变形,并变成电绝缘状态。Verwey 在 1939 年提出,这种转变是由 Fe2+和 Fe3+离子的电荷有序驱动的,但低温相的基态仍然存在争议,因为晶体畴的孪晶阻碍了结构的衍射研究。最近的粉末衍射精修和共振 X 射线研究导致了各种电荷有序和键二聚基态模型的提出。在这里,我们通过来自几乎单畴、40 微米晶粒的高能 X 射线衍射,报告了磁铁矿的完整低温超结构,并确定了出现的顺序。无对称结构由 168 个原子位移波(冻结声子模式)的叠加描述,所有波的振幅都小于 0.24 ångströms。FeO6 八面体的变形表明,Verwey 的假设在第一近似值上是正确的,并且电荷和 Fe2+轨道有序与最近的预测一致。然而,一些 Fe-Fe 距离的异常缩短表明,局部电子分布在线性三-Fe 位单元上,我们称之为“三聚体”。电荷有序和三位置变形引起了相当大的原子偏离中心的位移,并将由此产生的大电极化与磁化耦合。三聚体在 Verwey 转变以上的磁铁矿中和其他过渡金属氧化物中可能是重要的准粒子。