矫顽力
材料科学
铁磁性
磁铁
极限抗拉强度
磁化
凝聚态物理
电阻率和电导率
合金
磁滞
复合材料
磁场
机械工程
电气工程
物理
量子力学
工程类
作者
Liuliu Han,Fernando Maccari,Isnaldi Rodrigues de Souza Filho,Nicolas J. Peter,Ye Wei,Baptiste Gault,Oliver Gutfleisch,Zhiming Li,Dierk Raabe
出处
期刊:Nature
[Springer Nature]
日期:2022-08-10
卷期号:608 (7922): 310-316
被引量:125
标识
DOI:10.1038/s41586-022-04935-3
摘要
Soft magnetic materials (SMMs) serve in electrical applications and sustainable energy supply, allowing magnetic flux variation in response to changes in applied magnetic field, at low energy loss1. The electrification of transport, households and manufacturing leads to an increase in energy consumption owing to hysteresis losses2. Therefore, minimizing coercivity, which scales these losses, is crucial3. Yet meeting this target alone is not enough: SMMs in electrical engines must withstand severe mechanical loads; that is, the alloys need high strength and ductility4. This is a fundamental design challenge, as most methods that enhance strength introduce stress fields that can pin magnetic domains, thus increasing coercivity and hysteresis losses5. Here we introduce an approach to overcome this dilemma. We have designed a Fe-Co-Ni-Ta-Al multicomponent alloy (MCA) with ferromagnetic matrix and paramagnetic coherent nanoparticles (about 91 nm in size and around 55% volume fraction). They impede dislocation motion, enhancing strength and ductility. Their small size, low coherency stress and small magnetostatic energy create an interaction volume below the magnetic domain wall width, leading to minimal domain wall pinning, thus maintaining the soft magnetic properties. The alloy has a tensile strength of 1,336 MPa at 54% tensile elongation, extremely low coercivity of 78 A m-1 (less than 1 Oe), moderate saturation magnetization of 100 A m2 kg-1 and high electrical resistivity of 103 μΩ cm.
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