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首页> 外文期刊>Journal of the European Ceramic Society >3D crystallographic alignment of alumina ceramics by application of low magnetic fields
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3D crystallographic alignment of alumina ceramics by application of low magnetic fields

机译:用低磁场应用氧化铝陶瓷的三维结晶对准

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Non-cubic crystals exhibit anisotropic physical and functional properties. Microscopic crystallites as constituents of polycrystalline materials are randomly oriented, thus polycrystalline ceramics lack the anisotropic properties of their monocrystalline counterparts. We propose a technology that exploits the synergy between magnetic alignment and colloidal ceramics processing, and enables to independently tune the orientation of grains in different sample regions by infinitesimal magnetic fields (<10?mT). The grain pivot mechanism enables the emulation of single crystals, as well as the creation of large complex-shaped ceramic elements with designed crystallographic landscapes and spatially and directionally tuned properties. Ultra-high magnetic response arises from magnetic shape anisotropy of platelet-shaped seed crystallites coated with small amounts of iron oxide nanoparticles. To control crystallographic growth directions during subsequent annealing procedures, the seeds are dispersed and aligned in a matrix of chemically identical, but much finer spherical particles. This technology opens an avenue to remarkably improve structural and functional properties of ceramic elements employed in numerous industrial applications.
机译:非立方晶体表现出各向异性物理和功能性。作为多晶材料的成分的微观微晶是随机取向的,因此多晶陶瓷缺乏它们的单晶对应物的各向异性特性。我们提出了一种技术利用磁对准和胶体陶瓷处理之间的协同作用,并且能够通过无限磁场(<10μmt)独立地调节不同样品区域中的谷物的方向。颗粒枢轴机构能够仿真单晶,以及在具有设计的晶体景观和空间和定向调谐的性质的大型复杂形陶瓷元件的产生。从涂有少量氧化铁纳米粒子的血小板形晶粒晶体的磁形各向异性产生超高磁响应。为了在随后的退火程序期间控制晶体生长方向,将种子分散并在化学相同的基质中排列,但是更细的球形颗粒。该技术开辟了一个途径,以显着提高许多工业应用中使用的陶瓷元件的结构和功能性。

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