材料科学
矫顽力
磁性
铁磁性
铁磁性
联轴节(管道)
凝聚态物理
工作(物理)
光电子学
感应耦合
热稳定性
热的
磁化
纳米尺度
瞬态(计算机编程)
焦耳加热
剩磁
磁制冷
谐振器
磁导率
磁性纳米粒子
二进制数
相对渗透率
自旋电子学
交换互动
纳米材料
纳米技术
磁铁
上部结构
格子(音乐)
磁场
双金属
作者
Jiajun Liu,Xiaodi Zhou,Mingyue Yuan,Guanyu Chen,Yiqian Du,Jian Wang,Guisheng Liang,Han‐Wen Cheng,Renchao Che
摘要
As high-density information storage, integrated magnetic sensors, and ultrathin wearable devices continue to advance, nanoscale multielement transition-metal alloys are required to retain stable exchange coupling, anisotropy, and resistance to thermally activated magnetization fluctuations. Here, we develop a binary CoNi multigranular superstructure (MGS), enabled by pulsed Joule heating, to reconstruct magnetic coupling states and stabilize collective magnetism at the nanoscale. Specifically, transient energy fluctuations drive structural reconfiguration, yielding high-density interfacial networks and locally coherent magnetic units within individual superstructures. Reinforced interfacial pinning and dual magnetic coupling strengthen exchange interactions and suppress magnetothermal perturbations, thereby alleviating nanoscale-induced magnetic degradation. The CoNi nanoalloy with the MGS achieves a ∼400% enhancement in coercivity and a 208% improvement in permeability relative to the conventionally annealed CoNi sample, outperforming representative ferromagnetic alloys. Moreover, the superstructure exhibits over 50% effective absorption across 5G wireless spectrum with thermal stability from 300 to 800 K. This work establishes a practical route to enhance the magnetic properties of binary transition-metal nanoalloys for flexible, high-performance electromagnetic (EM) devices.
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