量子力学について 機械的共鳴器における運動の量子圧縮
E E Wollman1, C U Lei1, A J Weinstein1
1Applied Physics, California Institute of Technology, Pasadena, CA 91125, USA.
まとめ
量子ゼロポイントの動きを 機械的共振器で操作しました マイクロ波の放射線圧力を使ってです 量子工学と超敏感センサーを 進歩させました
科学分野:
- 量子力学について
- 量子光学
- ナノテクノロジー
背景:
- 量子力学では 調和振動器は 基本状態であっても 固有のゼロポイント運動を示すと規定しています
- これらの量子変動は 避けられないものですが 顕微鏡システムでの操作の機会を提示します
研究 の 目的:
- マイクロメートルスケールの機械的共鳴器の熱変動を操作する.
- 静止した四角形に圧縮された運動状態を設計する.
- 熱状態に対する相感性,反作用回避測定を行う.
主な方法:
- 熱変動に影響を与えるためにマイクロ波周波数放射圧力を利用した.
- マイクロメートルの 機械的共鳴器を設計した
- 量子状態を測るための相感度測定を行った.
主要な成果:
- 基本状態の0.80倍で最小の変数を持つ静止四角圧縮状態を達成しました.
- 熱状態をゼロポイントの1.09倍に圧縮した
- 顕微鏡システムにおける量子変動の制御を証明した.
結論:
- 量子エンジニアリングによる 大量の物質の状態は 達成可能である.
- この研究は,大規模な量子システムの脱合性についての洞察を提供します.
- 超敏感な力や運動感知技術の 基礎を築いたのです
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