通过强烈的光场对电子过程进行第二次控制
A Baltuska1, Th Udem, M Uiberacker
1Institut für Photonik, Technische Universität Wien, Gusshausstrasse. 27, A-1040 Wien, Austria.
Nature
|February 7, 2003
概括
科学家们产生了强烈的激光脉冲,具有稳定的载体-信封相. 这一突破允许精确控制原子运动和每秒钟的X射线发射,使量子力学的新研究成为可能.
科学领域:
- 量子光学是一种量子光学.
- 一秒钟的科学科学
- 强电场物理学 强电场物理学
背景情况:
- 激光光的控制通常通过幅度和频率在五秒钟时间尺度上实现.
- 描述和控制几个周期的激光脉冲需要了解载体-信封相 (CEP).
- 随机的射击对射击CEP转移阻碍了光物相互作用的可重复控制.
研究的目的:
- 为了产生强烈的,短周期的激光脉冲,具有稳定的载体-外相 (CEP).
- 为了证明使用这些稳定的CEP脉冲精确控制原子运动和电子波包.
- 为了利用可控光波形来产生和表征一秒钟软X射线发射.
主要方法:
- 产生强烈的,短周期的激光脉冲,具有稳定载体-信封相位.
- 在电离物质中产生光诱导的原子电流.
- 在每秒的时间尺度上控制电子波束运动.
- 产生和分析连贯的软X射线发射.
主要成果:
- 实现了强烈激光脉冲的产生,并具有稳定的载体-信封相位.
- 以量子有限的精度证明了微观运动的可重复触发和转向.
- 控制的电子波包运动在时间尺度短于250亚秒.
- 产生一秒钟软X射线发射,具有可控制的时间结构.
结论:
- 稳定的载体-信封相激光脉冲能够对光场驱动的原子过程进行前所未有的控制.
- 可以实现电子运动和软X射线发射的每秒控制.
- 这项技术为探测和操纵亚秒级物质提供了一个新的工具.
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