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首页> 外文期刊>Science Advances >Ultrafast electron diffraction from nanophotonic waveforms via dynamical Aharonov-Bohm phases
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Ultrafast electron diffraction from nanophotonic waveforms via dynamical Aharonov-Bohm phases

机译:通过动态AHARONOV-BOHM阶段从纳光电波形衍射超快电子衍射

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Electron interferometry via phase-contrast microscopy, holography, or picodiffraction can provide a direct visualization of the static electric and magnetic fields inside or around a material at subatomic precision, but understanding the electromagnetic origin of light-matter interaction requires time resolution as well. Here, we demonstrate that pump-probe electron diffraction with all-optically compressed electron pulses can capture dynamic electromagnetic potentials in a nanophotonic material with sub-light-cycle time resolution via centrosymmetry-violating Bragg spot dynamics. The origin of this effect is a sizable quantum mechanical phase shift that the electron de Broglie wave obtains from the oscillating electromagnetic potentials within less than 1 fs. Coherent electron imaging and scattering can therefore reveal the electromagnetic foundations of light-matter interaction on the level of the cycles of light.
机译:通过相位对比显微镜,全息术或Picodiffraction的电子干涉测量可以在子原精度下提供静电和磁场的直接可视化,但是理解光物质相互作用的电磁来源也需要时间分辨率。这里,我们证明了具有全光学压缩电子脉冲的泵探针电子衍射可以通过沿亚光循环时间分辨率捕获纳米光电材料中的动态电磁电位,通过沿亚光循环时间分辨率进行沿亚光循环时间分辨率。这种效果的起源是一种相当大的量子机械相移,电子DE Broglie波从振荡的电磁电位获得小于1fs。因此,相干的电子成像和散射可以揭示光质物质相互作用的电磁基础对光循环的循环水平。

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