電気フィールドの真空変動の直接サンプリング
C Riek1, D V Seletskiy1, A S Moskalenko1
1Department of Physics and Center for Applied Photonics, University of Konstanz, D-78457 Konstanz, Germany.
まとめ
量子システムのゼロポイント運動である 難解な真空の変動を直接検出しました 量子物理学と 光の量子状態を 研究する新しい方法を 提供しています
科学分野:
- 量子物理学
- 量子光学
- 電磁気学
背景:
- 量子システムは基本状態でゼロポイント運動を示し,しばしば真空の変動として間接的に観測されます.
- 電磁放射線の真空の波動は,典型的には難解であり,直接検出が困難であると考えられています.
研究 の 目的:
- 空間の電磁放射線の真空変動を直接検出する.
- 光の量子状態にアクセスし,量子現象を研究するための新しい方法を探求する.
主な方法:
- エレクトロ・オプティック・サンプリングを 集中したフェムト秒のレーザーパルスで 時間空間を 探査した
- サブサイクルタイムリーダウトと非線形結合を共鳴から遠く,増幅なしに仮想光子からの信号を検出するために使用します.
主要な成果:
- 真空の波動の グラウンド状態の 電気フィールドの 変動を 検出しました
- 試料の4次元の時空の体積に逆比例していることが示された.
結論:
- 真空の波動の直接検出は 極限時間領域の量子物理学に 新たな道を開きます
- 開発された技術は 光の量子状態への非破壊的なアクセスを提供します
- 潜在的応用には,多テラヘルツ周波数での凝縮物質における基本的な興奮の時間解析研究が含まれます.
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