Mn3Ptにおける幾何学的な挫折を調節することによって,優れたバロカロリック効果
Feixiang Long1, Yuzhu Song1, Fuyang Tian2
1Department of Physical Chemistry, Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing 100083, China.
低圧によって引き起こされるMn3Ptの大きな熱量効果 (BCE) を発見した. この発見は幾何学的な挫折によって変化し 緑色の固体冷却技術が進歩しました
科学分野:
- 材料科学
- 固体物理学
- 熱力学について
背景:
- 緑色で効率的な固体冷却を提供します.
- 低圧駆動のバロカロリー材料は,広範な冷却用途の鍵です.
研究 の 目的:
- Mn3Ptの幾何学的な挫折によって調節された低圧駆動のバロカロリック効果 (BCE) を明らかにする.
- 磁石における幾何学的な挫折の二重効果のモデルを確立する.
主な方法:
- ニュートロン粉の微分
- 計算の第一原則は
- 磁気相移行における幾何学的挫折効果の分析.
主要な成果:
- Mn3Ptは大きな低圧 BCEを示しています.
- 9.77K/MPaの温度変化強度を達成し,金属BCE材料の中で最高です.
- 幾何学的な挫折は巨大な体積の膨張を誘導し,磁気相変化の感度を高めます.
結論:
- 幾何学的な挫折は,Mn3Ptのバロカロリー効果を調節する二重の役割を果たします.
- 確立されたモデルは,新熱冷却装置の研究を促進します.
- この研究は 効率的で低圧の固体冷却技術への道を開きます
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