Center for Free-Electron Laser Science, DESY, Notkestrasse 85, D-22607 Hamburg, Germany.
Phys Rev Lett. 2013 Mar 29;110(13):137403. doi: 10.1103/PhysRevLett.110.137403. Epub 2013 Mar 26.
Tracing the motion of electrons has enormous relevance to understanding ubiquitous phenomena in ultrafast science, such as the dynamical evolution of the electron density during complex chemical and biological processes. Scattering of ultrashort x-ray pulses from an electronic wave packet would appear to be the most obvious approach to image the electronic motion in real time and real space with the notion that such scattering patterns, in the far-field regime, encode the instantaneous electron density of the wave packet. However, recent results by Dixit et al. [Proc. Natl. Acad. Sci. U.S.A. 109, 11636 (2012)] have put this notion into question and have shown that the scattering in the far-field regime probes spatiotemporal density-density correlations. Here, we propose a possible way to image the instantaneous electron density of the wave packet via ultrafast x-ray phase contrast imaging. Moreover, we show that inelastic scattering processes, which plague ultrafast scattering in the far-field regime, do not contribute in ultrafast x-ray phase contrast imaging as a consequence of an interference effect. We illustrate our general findings by means of a wave packet that lies in the time and energy range of the dynamics of valence electrons in complex molecular and biological systems. This present work offers a potential to image not only instantaneous snapshots of nonstationary electron dynamics, but also the laplacian of these snapshots which provide information about the complex bonding and topology of the charge distributions in the systems.
追踪电子的运动对于理解超快科学中无处不在的现象具有巨大的意义,例如在复杂的化学和生物过程中电子密度的动态演化。从电子波包中散射超短 X 射线脉冲似乎是实时和真实空间中成像电子运动的最明显方法,其概念是,在远场范围内,这种散射模式编码了波包的瞬时电子密度。然而,Dixit 等人的最近结果[Proc. Natl. Acad. Sci. U.S.A. 109, 11636 (2012)]对这一概念提出了质疑,并表明远场范围内的散射探测时空密度密度相关。在这里,我们提出了一种通过超快 X 射线相位对比成像来成像波包瞬时电子密度的可能方法。此外,我们表明,由于干涉效应,在远场超快散射中困扰着非弹性散射过程的不贡献于超快 X 射线相位对比成像。我们通过一个位于复杂分子和生物系统中价电子动力学的时间和能量范围内的波包来说明我们的一般发现。这项工作提供了一种不仅可以成像非定态电子动力学的瞬时快照,而且可以成像这些快照的拉普拉斯的可能性,从而提供有关系统中电荷分布的复杂键合和拓扑结构的信息。