A・B・サイト置換ビスムートフェライトにおけるカンテッド・スピン弱磁性および負熱膨張の達成
Kano Hatayama1, Jun Miyake1, Daiki Ono1
1Materials and Structures Laboratory, Institute of Integrated Research, Institute of Science Tokyo, Yokohama 226-8501, Japan.
Journal of the American Chemical Society
|November 28, 2025
まとめ
研究者らは,マルチフェロイックビスムートフェライト (BiFeO3) を元素に置き換えて改造し,室温での弱いフェロ磁性および負の熱膨張を誘導した. この発見により,BiFeO3ベースの新しい機能的材料への道が開かれました.
科学分野:
- 材料科学
- 固体物理学
- マグネティズム
背景:
- ビスムートフェライト (BiFeO3) は,網磁化を防ぐ複雑なサイクロイドスピン順序を持つ重要なマルチフェロ材料です.
- BiFeO3の改良を調査することは,先進的な応用におけるその可能性を解き放つために極めて重要です.
研究 の 目的:
- BiFeO3におけるA位 (Ca2+) とB位 (Ru4+またはIr4+) の同時置換による影響を調査する.
- 磁気,鉄電気,熱膨張の性質を調査する.
主な方法:
- BiFeO3格子におけるCa2+のBi3+とRu4+/Ir4+のFe3+の化学置換
- 結晶構造,磁気順序,熱膨張の特性
主要な成果:
- サイクロイド回転調節の抑制と室温で傾斜した弱い鉄磁性の誘導.
- 極角形の結晶構造の保存
- 室温の周りの体積の1.77%の負の熱膨張を観測した.
結論:
- 同時にAとBの置換はBiFeO3のマルチフェロ属性を調節するのに有効です.
- 設計されたBiFeO3は,負の熱膨張を含む,機能的な材料の用途に有望な特性を示しています.
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