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Ordered ferrimagnetic form of ferrihydrite reveals links among structure, composition, and magnetism

机译:水铁矿的有序铁磁形式揭示了结构,成分和磁性之间的联系

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摘要

The natural nanomineral ferrihydrite is an important component of many environmental and soil systems and has been implicated as the inorganic core of ferritin in biological systems. Knowledge of its basic structure, composition, and extent of structural disorder is essential for understanding its reactivity, stability, and magnetic behavior, as well as changes in these properties during aging. Here we investigate compositional, structural, and magnetic changes that occur upon aging of "2-line" ferrihydrite in the presence of adsorbed citrate at elevated temperature. Whereas aging under these conditions ultimately results in the formation of hematite, analysis of the atomic pair distribution function and complementary physicochemical and magnetic data indicate formation of an intermediate ferrihydrite phase of larger particle size with few defects, more structural relaxation and electron spin ordering, and pronounced ferrimagnetism relative to its disordered ferrihydrite precursor. Our results represent an important conceptual advance in understanding the nature of structural disorder in ferrihydrite and its relation to the magnetic structure and also serve to validate a controversial, recently proposed structural model for this phase. In addition, the pathway we identify for forming ferrimagnetic ferrihydrite potentially explains the magnetic enhancement that typically precedes formation of hematite in aerobic soil and weathering environments. Such magnetic enhancement has been attributed to the formation of poorly understood, nano-sized ferri-magnets from a ferrihydrite precursor. Whereas elevated temperatures drive the transformation on timescales feasible for laboratory studies, our results also suggest that ferrimagnetic ferrihydrite could form naturally at ambient temperature given sufficient time.
机译:天然的纳米矿物亚铁酸盐是许多环境和土壤系统的重要组成部分,并且已被认为是生物系统中铁蛋白的无机核心。了解其基本结构,组成和结构紊乱的程度,对于了解其反应性,稳定性和磁性能以及老化过程中这些特性的变化至关重要。在这里,我们研究了在高温下吸附柠檬酸盐的情况下,“ 2-线”亚铁酸盐老化后发生的成分,结构和磁性变化。尽管在这些条件下的老化最终会导致赤铁矿的形成,但对原子对分布函数以及互补的理化和磁数据的分析表明,形成了具有较大粒径,几乎没有缺陷,结构弛豫和电子自旋有序的中间亚铁酸盐相。相对于其无序的水铁矿前驱体,具有明显的亚铁磁性。我们的结果代表了在理解水铁矿中结构紊乱的性质及其与磁性结构的关系方面的重要概念进展,并且还有助于验证该阶段最近有争议的结构模型。此外,我们确定的形成亚铁磁性亚铁酸盐的途径可能解释了在好氧土壤和风化环境中通常先于赤铁矿形成之前的磁性增强作用。这种磁性增强归因于由亚铁水合物前体形成的,人们所了解的,纳米级的亚铁磁体。高温推动了实验室研究可行的时间尺度上的转变,但我们的结果也表明,只要有足够的时间,亚铁磁性亚铁酸盐可以在环境温度下自然形成。

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  • 作者单位

    Surface and Aqueous Geochemistry Group, Department of Geological & Environmental Sciences, Stanford University, Stanford, CA 94305 Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, CA 94025;

    rnDepartamento de Ciencias y Recursos Agricolas y Forestales, Universidad de Cordoba, Campus de Rabanales, 14071 Cordoba, Spain;

    rnDepartamento de Ciencias y Recursos Agricolas y Forestales, Universidad de Cordoba, Campus de Rabanales, 14071 Cordoba, Spain;

    rnInstitute de Ciencia de Materiales de Madrid (CSIC), 28049 Cantoblanco, Madrid, Spain;

    rnInstitute de Ciencia de Materiales de Madrid (CSIC), 28049 Cantoblanco, Madrid, Spain;

    rnDepartment of Chemistry, Umea University, SE 901 87 Umea, Sweden;

    rnPaleomagnetism and Geochronology Laboratory (SKL-LE), Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China;

    rnSandia National Laboratories,PO Box 5800, MS 1415, Albuquerque, NM 87185;

    rnSurface and Aqueous Geochemistry Group, Department of Geological & Environmental Sciences, Stanford University, Stanford, CA 94305;

    rnSurface and Aqueous Geochemistry Group, Department of Geological & Environmental Sciences, Stanford University, Stanford, CA 94305 Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, CA 94025;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    crystal structure; disorder; nano-sized ferrimagnets; soil formation; strain;

    机译:晶体结构紊乱;纳米大小的ferrimagnets;土壤形成;应变;
  • 入库时间 2022-08-18 00:41:14

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