高エントロピー磁性カゴメ格子 (Gd,Tb,Dy,Ho,Er)Mn6Sn6
Wenhao Liu1,2,3, Nikhil Uday Dhale1, Youzhe Chen2,3
1Department of Physics, the University of Texas at Dallas, Richardson, Texas 75080, United States.
Inorganic chemistry
|December 28, 2025
まとめ
磁性カゴメ格子化合物(R)Mn6Sn6における高エントロピー合金化は、新規磁気遷移と持続的な線形磁気抵抗を明らかにします。トポロジカル電子状態は維持され、磁気およびトポロジカル現象における新たな発見が期待されます。
科学分野:
- 物性物理学
- 材料科学
- 量子材料
背景:
- RMn6Sn6化合物は、磁性とトポロジカル電子状態との相互作用を示す。
- 希土類合金化は、構成エントロピーを介して物理的特性を制御する。
研究 の 目的:
- 高エントロピー(Gd,Tb,Dy,Ho,Er)Mn6Sn6単結晶の磁気特性および輸送特性を調査する。
- 高エントロピーと磁性カゴメ格子構造の組み合わせ効果を探求する。
主な方法:
- (Gd,Tb,Dy,Ho,Er)Mn6Sn6単結晶の合成。
- 磁気特性および輸送特性の体系的な調査。
- 磁気遷移および磁気抵抗の特性評価。
主要な成果:
- 高エントロピー材料は複数の新規磁気遷移を示す。
- 線形磁気抵抗は4ケルビンで20テスラまで持続する。
- 固有の非自明なバンドトポロジーと異常ホール効果が観察される。
結論:
- RMn6Sn6系における高エントロピー合金化は、新たな磁気挙動をもたらし、トポロジカル特性を維持する。
- このアプローチは、新規磁気およびトポロジカル現象を探求するための広大な組成領域を開く。
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