瞬間的な光磁気パルスによる磁気化の超高速非熱制御
A V Kimel1, A Kirilyuk, P A Usachev
1IMM, Radboud University Nijmegen, 6525 ED Nijmegen, The Netherlands.
Nature
|May 27, 2005
まとめ
現在,超高速レーザーは,逆ファラデー効果を介して,円周的に偏振されたパルスを使用して,非熱的に磁気を制御することができます. この光磁気相互作用は,高度な磁気装置のためのより速く,より効率的なスピン制御を提供します.
科学分野:
- 凝縮物質物理学 凝縮物質物理学
- 超高速光学について
- スピントロニクス (Spintronics) は,スピントロニクス (Spintronics) を開発したものです.
背景:
- 高密度データストレージと急速な操作に対する需要の増加は,磁場制御を超えた研究を推進しています.
- 現在のレーザーベースの磁気操作は,熱効果に依存し,冷却時間要件のために速度を制限します.
研究 の 目的:
- レーザーパルスを使った超高速磁気回転制御のための非熱的メカニズムを実証する.
- 一貫性スピンダイナミクス操作のための逆ファラデー効果を探求する.
主な方法:
- 円状に偏ったフェムト秒のレーザーパルスを利用します.
- 光磁気相互作用の逆ファラデー効果を調査する.
主要な成果:
- 非熱刺激とスピンダイナミクスの一貫した制御を達成しました.
- レーザーパルス幅 (約) だけで制限される瞬間的な光磁気相互作用が実証されました. 200フィート) でした.
結論:
- 超高速のコヒーレント・スピン・コントロールのための新しいメカニズムを確立しました.
- 磁気装置における超高速レーザーアプリケーションのための新しい道が開かれ,熱的制限を克服しました.
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