论文标题
光束电子的单周光学控制
Single-cycle optical control of beam electrons
论文作者
论文摘要
具有受控电磁波形的单周期光脉冲可以引导原子,分子,纳米结构或浓度量的原子中低能量电子的运动。但是,单周光控制下的高能电子将是一种具有自由电子激光器或电子显微镜的基于光束的Attosent Physics的促成技术。在这里,我们报告了以中红外光的孤立光学周期自由传播的KEV电子的控制,并在时间上创建具有峰值周期特异性亚周期结构的调制电子电流。载波阶段的明显影响,光波形的幅度和分散在自由空间电子波函数的时间组成,脉冲持续时间和chirp上的影响表明了我们控制的子周期性质。这些结果在激光驱动的粒子加速度,种子自由电子激光器,Attosement时空成像,电子量子光学元件以及单周期光的时间结构所需的其他地方都创造了新的机会。
Single-cycle optical pulses with a controlled electromagnetic waveform allow to steer the motion of low-energy electrons in atoms, molecules, nanostructures or condensed-matter on attosecond dimensions in time. However, high-energy electrons under single-cycle light control would be an enabling technology for beam-based attosecond physics with free-electron lasers or electron microscopy. Here we report the control of freely propagating keV electrons with an isolated optical cycle of mid-infrared light and create a modulated electron current with a peak-cycle-specific sub-femtosecond structure in time. The evident effects of the carrier-envelope phase, amplitude and dispersion of the optical waveform on the temporal composition, pulse durations and chirp of the free-space electron wavefunction demonstrate the sub-cycle nature of our control. These results create novel opportunities in laser-driven particle acceleration, seeded free-electron lasers, attosecond space-time imaging, electron quantum optics and wherever else high-energy electrons are needed with the temporal structure of single-cycle light.