对电磁真空状态的电场相关性测量
Ileana-Cristina Benea-Chelmus1, Francesca Fabiana Settembrini2, Giacomo Scalari2
1ETH Zurich, Institute of Quantum Electronics, Zurich, Switzerland. ileanab@ethz.ch.
Nature
|April 12, 2019
概括
科学家直接测量了量子真空波动,即电磁辐射的零点能量, 这一突破为这些基本真空场波动提供了光谱特征.
科学领域:
- 量子物理学
- 电磁学
- 在真空中波动
背景情况:
- 量子力学预测了电磁真空中的零点电场波动.
- 这些真空波动是基本的,但不能直接用强度探测器测量.
- 之前的证据依赖于间接现象,如Lamb转移和卡西米尔力.
研究的目的:
- 直接测量真空场波动的光谱特征.
- 研究这些波动的时间和空间连贯性.
- 提供一种直接的方法来描述量子真空.
主要方法:
- 直接测量真空波动的场相关性.
- 在低温环境中的非线性晶体中利用电光检测.
- 专注于太赫兹频率范围.
主要成果:
- 实现真空场波动的直接测量.
- 每平方米的6.2 × 10−2伏的峰值场相关值记录.
- 相应的波动真空场强度确定为每米0.25伏.
结论:
- 首次成功测量真空场的波动.
- 确定了电磁辐射基本状态的光谱成分.
- 直接探测和理解量子真空的新途径.
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