磁晶各向异性
四方晶系
合金
各向异性能量
材料科学
穆斯堡尔谱学
各向异性
凝聚态物理
相(物质)
磁铁
磁各向异性
结晶学
冶金
磁场
晶体结构
化学
磁化
光学
物理
量子力学
有机化学
作者
L. H. Lewis,Plamen Stamenov
出处
期刊:Advanced Science
[Wiley]
日期:2023-12-10
卷期号:11 (7): e2302696-e2302696
被引量:15
标识
DOI:10.1002/advs.202302696
摘要
Abstract The production of locally atomically ordered FeNi (known by its meteoric mineral name, tetrataenite) is confirmed in bulk samples by simultaneous conversion X‐ray and backscattered γ‐ray 57 Fe Mössbauer spectroscopy. Up to 22 volume percent of the tetragonal tetrataenite phase is quantified in samples thermally treated under simultaneous magnetic‐ and stress‐field conditions for a period of 6 weeks, with the remainder identified as the cubic FeNi alloy. In contrast, all precursor samples consist only of the cubic FeNi alloy. Data from the processed alloys are validated using Mössbauer parameters derived from natural meteoritic tetrataenite. The meteoritic tetrataenite exhibits a substantially higher degree of atomic order than do the processed samples, consistent with their low uniaxial magnetocrystalline anisotropy energy of ≈1 kJ·m −3 . These results suggest that targeted refinements to the processing conditions of FeNi will foster greater atomic order and increased magnetocrystalline anisotropy, leading to an enhanced magnetic energy product. These outcomes also suggest that deductions concerning paleomagnetic conditions of the solar system, as derived from meteoritic data, may warrant re‐examination and re‐evaluation. Additionally, this work strengthens the argument that tetrataenite may indeed become a member of the advanced permanent magnet portfolio, helping to meet rapidly escalating green energy imperatives.
科研通智能强力驱动
Strongly Powered by AbleSci AI