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Updated: Jan 22, 2026

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Molecular Entanglement and Electrospinnability of Biopolymers
Published on: September 3, 2014
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マイクロメカニカル運動による静止の絡み合いの放射線
S Barzanjeh1, E S Redchenko2, M Peruzzo2
1Institute of Science and Technology Austria, Klosterneuburg, Austria. shabir.barzanjeh@ist.ac.at.
Nature
|June 28, 2019
まとめ
研究者はシリコンナノストリング振動器から 途中で絡み合ったマイクロ波放射を生成しました この画期的な発見は 機械システムにおける量子相関を証明し 量子強化の検出とセンシングの応用に 極めて重要です
科学分野:
- 量子力学について
- メカニカル・システム
- 電子レンジ技術
背景:
- 量子装置の鍵となるのは 絡み合いです
- アインシュタイン-ポドルスキー-ローゼン (EPR) 状態は量子通信で使用されます.
- EPR状態の生成は,通常,光学回路またはジョセフソン回路を含む.
研究 の 目的:
- 機械的な振動器で 絡み合った状態を決定的に生成し 分配する.
- 超低騒音環境で刺激,冷却,分散のバランスをとる.
主な方法:
- 30ミクロン長のナノストリングシリコンのパラメータ駆動
- 経路に絡み合ったマイクロ波の静止放射の観測.
- 真空レベル以下の2つの熱モードの共同フィールドオペレーターを圧縮します.
主要な成果:
- 軌道を絡めたマイクロ波放射の静止放出が観測された.
- 3.40デシベルで圧縮された
- メカニカルオシレータの動きは 1 ヘルツあたり最大50 光子と相関し マイクロ波のノイズに強い量子不一致を示しています
結論:
- 非侵襲的な測定による機械的振動器の非古典的な性質を証明した.
- 量子力学による検出や感知 基礎物理学の潜在的影響
- チップ上のデバイスは 異なるエネルギースケールにわたるサブシステムを 巻き込みます
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