通过柔磁合的近二次马氏体相位过渡.
Yechao Ling1,2, Chenyu Zhang3,4, Xiao Yu2
1School of Electronic and Information Engineering, Suzhou Polytechnic University, Suzhou 215104, China.
Nano letters
|October 6, 2025
概括
研究人员使用应变梯度减少了Ni-Mn-SnHeusler合金中的歇斯底里. 这提高了磁性制冷和微尺度智能系统的性能,通过实现近似二次阶段过渡.
科学领域:
- 材料科学 材料科学 材料科学
- 凝聚物质物理学 凝聚物质物理学
背景情况:
- 豪斯勒合金表现出第一阶段的马氏体变化,由于内在歇斯底里和狭窄的操作温度,限制了应用.
- 这些限制阻碍了它们在智能金属组件和节能设备中的使用.
研究的目的:
- 为了减轻歇斯底里和扩大Ni-Mn-Sn海斯勒合金薄膜的工作温度范围.
- 通过可控的应变梯度来增强磁性和制冷能力.
主要方法:
- 在纹的Ni-Mn-Sn海斯勒合金薄膜中引入不均的应变梯度.
- 研究柔磁合对相位转换和磁性质的影响.
主要成果:
- 在显著降低歇斯底里 (ΔThysteresis = 3.7 K) 的情况下,实现了近似二次马氏体转换.
- 观察到增强的铁磁相互作用和扩大操作温度窗口 (To = 260 K) 对磁变化.
- 报告了和磁化 (Ms = 71.3 emu/g) 和有效制冷能力 (RCeff = 340.6 J·kg-1 在50 kOe) 的实质性改进.
结论:
- 不均的应变梯度为设计先进的相变材料提供了可行的策略.
- 开发的方法显示了磁性制冷和微尺度智能系统中的应用的前景.
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