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In situ annealing achieves an ultrafast synthesis of high coercive strontium ferrite foams and beyond

机译:原位退火实现了高矫顽力锶铁氧体泡沫的超快速合成及其他

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摘要

Strontium ferrite nanostructures have attracted intensive interest recently due to the increasing demand for cost-effective features and good chemical corrosion resistance of magnetic materials, yet the ultrafast synthesis of strontium ferrite with desired coercivity is still experiencing a severe challenge. Herein, porous strontium ferrite foams with a coercivity up to 23.35 kOe were prepared by ultrafast in situ annealing for 1 min based on an auto-combustion strategy. The high coercivity of strontium ferrite benefits from the increasing magnetocrystalline anisotropy caused by the ion substitution and the appropriate grain size close to the critical single-domain size of strontium ferrite. In addition, this ultrafast synthesis can be extended to prepare a series of porous spinel, lanthanide-based perovskites, and their high-entropy counterpart foams. We also demonstrate that this strategy is feasible for preparing biphasic composite oxide foams. Furthermore, this work provides important guidance for the design of porous permanent magnet materials and the efficient preparation of porous oxide foam materials.
机译:锶铁氧体纳米结构吸引了最近由于日益密集的兴趣具有成本效益的需求特性和良好的磁的化学耐腐蚀性材料,然而,超快的合成锶铁氧体与期望的矫顽力仍然经历着严峻的挑战。多孔锶铁氧体泡沫矫顽力23.35 kOe被超速的准备基于一个原位退火为1分钟燃烧自动策略。锶铁氧体福利的增加磁晶各向异性引起的离子替换和适当的粒度锶的关键单极大小铁素体。可以扩展到准备一系列多孔吗尖晶石,lanthanide-based钙钛矿,他们熵值对应的泡沫。证明这种策略是可行的准备两相的复合氧化物泡沫。此外,这项工作提供了重要指导多孔永久的设计磁铁材料和有效的准备氧化多孔泡沫材料。

著录项

  • 来源
    《Nanoscale》 |2023年第16期|7466-7471|共6页
  • 作者单位

    MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, Heilongjiang 150001, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类 分子物理学、原子物理学;
  • 关键词

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