4th Physical Institute, Solids and Nanostructures, University of Göttingen, Göttingen 37077, Germany.
Nature. 2015 May 14;521(7551):200-3. doi: 10.1038/nature14463.
Coherent manipulation of quantum systems with light is expected to be a cornerstone of future information and communication technology, including quantum computation and cryptography. The transfer of an optical phase onto a quantum wavefunction is a defining aspect of coherent interactions and forms the basis of quantum state preparation, synchronization and metrology. Light-phase-modulated electron states near atoms and molecules are essential for the techniques of attosecond science, including the generation of extreme-ultraviolet pulses and orbital tomography. In contrast, the quantum-coherent phase-modulation of energetic free-electron beams has not been demonstrated, although it promises direct access to ultrafast imaging and spectroscopy with tailored electron pulses on the attosecond scale. Here we demonstrate the coherent quantum state manipulation of free-electron populations in an electron microscope beam. We employ the interaction of ultrashort electron pulses with optical near-fields to induce Rabi oscillations in the populations of electron momentum states, observed as a function of the optical driving field. Excellent agreement with the scaling of an equal-Rabi multilevel quantum ladder is obtained, representing the observation of a light-driven 'quantum walk' coherently reshaping electron density in momentum space. We note that, after the interaction, the optically generated superposition of momentum states evolves into a train of attosecond electron pulses. Our results reveal the potential of quantum control for the precision structuring of electron densities, with possible applications ranging from ultrafast electron spectroscopy and microscopy to accelerator science and free-electron lasers.
用光对量子系统进行相干操控有望成为未来信息和通信技术的基石,包括量子计算和加密技术。将光相位转移到量子波函数上是相干相互作用的一个定义方面,也是量子态制备、同步和计量学的基础。在原子和分子附近,光相调制的电子态对于阿秒科学技术至关重要,包括极端紫外脉冲和轨道断层摄影术的产生。相比之下,高能自由电子束的量子相干相位调制尚未得到证明,尽管它有望直接实现超快成像和光谱学,并在阿秒尺度上对电子脉冲进行定制。在这里,我们演示了在电子显微镜光束中自由电子群体的相干量子态操控。我们采用超短电子脉冲与光近场的相互作用,在电子动量态群体中诱导出拉比振荡,这可以作为光驱动场的函数进行观察。我们得到了与等拉比多级量子阶梯的标度完全一致的结果,这代表了光驱动“量子漫步”在动量空间中相干地重塑电子密度的观察。我们注意到,相互作用后,动量态的光产生叠加态演变成一列阿秒电子脉冲。我们的结果揭示了量子控制在电子密度的精确结构中的潜力,其潜在应用范围从超快电子光谱学和显微镜学到加速器科学和自由电子激光器。