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位错对维韦转变时磁铁矿中晶体孪晶和畴壁运动的影响。

The effects of dislocations on crystallographic twins and domain wall motion in magnetite at the Verwey transition.

作者信息

Lindquist Anna K, Feinberg Joshua M, Harrison Richard J, Loudon James C, Newell Andrew J

机构信息

1Geology Department, Macalester College, 1600 Grand Ave, Saint Paul, MN 55105 USA.

2Department of Earth Sciences, Institute for Rock Magnetism, University of Minnesota, 116 Church Street SE, Minneapolis, MN 55455 USA.

出版信息

Earth Planets Space. 2019;71(1):5. doi: 10.1186/s40623-018-0981-7. Epub 2019 Jan 15.

Abstract

Pure magnetite experiences a first-order phase transition (the Verwey transition) near 120-125 K wherein the mineral's symmetry changes from cubic to monoclinic. This transformation results in the formation of fine-scale crystallographic twins and is accompanied by a profound change in magnetic properties. The Verwey transition is critical to a variety of applications in environmental magnetism and paleomagnetism because its expression is diagnostic for the presence of stoichiometric (or nearly stoichiometric) magnetite and cycling through the Verwey transition tends to remove the majority of multidomain magnetic remanence. Internal and external stresses demonstrably affect the onset of the Verwey transition. Dislocations create localized internal stress fields and have been cited as a possible source of an altered Verwey transition in deformed samples. To further investigate this behavior, a laboratory-deformed magnetite sample was examined inside a transmission electron microscope as it was cooled through the Verwey transition. Operating the microscope in the Fresnel mode of Lorentz microscopy enabled imaging of the interactions between dislocations, magnetic domain walls, and low-temperature crystallographic twin formation during the phase transition. To relate the observed changes to more readily measurable bulk sample magnetic behavior, low-temperature magnetic measurements were also taken using SQUID magnetometry. This study allows us, for the first time, to observe the Verwey transition in a defect-rich area. Dislocations, and their associated stress fields, impede the development of monoclinic magnetite twin structures during the phase transition and increase the remanence of a magnetite sample after cooling and warming through the Verwey transition.

摘要

纯磁铁矿在120 - 125K附近经历一级相变(韦尔韦相变),在此相变过程中,该矿物的对称性从立方晶系转变为单斜晶系。这种转变导致形成精细尺度的晶体孪晶,并伴随着磁性的深刻变化。韦尔韦相变对于环境磁学和古磁学中的各种应用至关重要,因为其表现是化学计量比(或接近化学计量比)磁铁矿存在的诊断依据,并且通过韦尔韦相变循环往往会消除大部分多畴磁性剩磁。内应力和外应力明显会影响韦尔韦相变的起始。位错会产生局部内应力场,并且被认为是变形样品中韦尔韦相变改变的可能来源。为了进一步研究这种行为,在透射电子显微镜内对一个实验室变形的磁铁矿样品进行了检查,该样品在冷却通过韦尔韦相变时被观察。在洛伦兹显微镜的菲涅耳模式下操作显微镜,能够对相变过程中位错、磁畴壁和低温晶体孪晶形成之间的相互作用进行成像。为了将观察到的变化与更易于测量的块状样品磁性行为联系起来,还使用超导量子干涉仪磁力计进行了低温磁性测量。这项研究首次使我们能够在富含缺陷的区域观察韦尔韦相变。位错及其相关的应力场在相变过程中阻碍单斜磁铁矿孪晶结构的发展,并在冷却和加热通过韦尔韦相变后增加磁铁矿样品的剩磁。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01c3/6383955/061961b63b2c/40623_2018_981_Fig1_HTML.jpg

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