首页> 美国卫生研究院文献>Journal of the Royal Society Interface >Controlled cobalt doping in the spinel structure of magnetosome magnetite: new evidences from element- and site-specific X-ray magnetic circular dichroism analyses
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Controlled cobalt doping in the spinel structure of magnetosome magnetite: new evidences from element- and site-specific X-ray magnetic circular dichroism analyses

机译:磁小体磁铁矿尖晶石结构中的受控钴掺杂:元素和特定于位置的X射线磁性圆二色性分析的新证据

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摘要

The biomineralization of magnetite nanocrystals (called magnetosomes) by magnetotactic bacteria (MTB) has attracted intense interest in biology, geology and materials science due to the precise morphology of the particles, the chain-like assembly and their unique magnetic properties. Great efforts have been recently made in producing transition metal-doped magnetosomes with modified magnetic properties for a range of applications. Despite some successful outcomes, the coordination chemistry and magnetism of such metal-doped magnetosomes still remain largely unknown. Here, we present new evidences from X-ray magnetic circular dichroism (XMCD) for element- and site-specific magnetic analyses that cobalt is incorporated in the spinel structure of the magnetosomes within Magnetospirillum magneticum AMB-1 through the replacement of Fe2+ ions by Co2+ ions in octahedral (Oh) sites of magnetite. Both XMCD at Fe and Co L2,3 edges, and energy-dispersive X-ray spectroscopy on transmission electron microscopy analyses reveal a heterogeneous distribution of cobalt occurring either in different particles or inside individual particles. Compared with non-doped one, cobalt-doped magnetosome sample has lower Verwey transition temperature and larger magnetic coercivity, related to the amount of doped cobalt. This study also demonstrates that the addition of trace cobalt in the growth medium can significantly improve both the cell growth and the magnetosome formation within M. magneticum AMB-1. Together with the cobalt occupancy within the spinel structure of magnetosomes, this study indicates that MTB may provide a promising biomimetic system for producing chains of metal-doped single-domain magnetite with an appropriate tuning of the magnetic properties for technological and biomedical applications.
机译:磁致趋向细菌(MTB)对磁铁矿纳米晶体(称为磁小体)的生物矿化,由于颗粒的精确形态,链状组装及其独特的磁性,引起了生物学,地质学和材料科学的浓厚兴趣。最近已经在生产用于多种应用的具有改进的磁性的掺杂过渡金属的磁小体方面做出了巨大的努力。尽管取得了一些成功的结果,但是这种金属掺杂的磁小体的配位化学和磁性仍然很大程度上未知。在这里,我们提供了来自X射线磁性圆二色性(XMCD)的元素和特定位置磁性分析的新证据,即通过取代Fe ,钴被掺入了磁性螺旋藻AMB-1中的磁小体的尖晶石结构中。 Co 2 + 离子在磁铁矿的八面体(Oh)位置产生2 + 离子。 Fe和Co L2,3边缘处的XMCD以及透射电子显微镜分析中的能量色散X射线光谱学都揭示了钴在不同颗粒中或在单个颗粒内部的分布不均。与未掺杂的相比,钴掺杂的磁小体样品具有较低的Verwey转变温度和较大的矫顽力,这与掺杂的钴量有关。这项研究还表明,在生长培养基中添加痕量钴可以显着改善磁性分枝杆菌AMB-1中的细胞生长和磁小体的形成。连同磁小体的尖晶石结构中的钴占据,这项研究表明MTB可以提供一种有前途的仿生系统,用于生产金属掺杂的单畴磁铁矿链,并适当调整其磁性能,以用于技术和生物医学应用。

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