Liu Haihua, Baskin John Spencer, Zewail Ahmed H
Physical Biology Center for Ultrafast Science and Technology, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, CA 91125.
Physical Biology Center for Ultrafast Science and Technology, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, CA 91125
Proc Natl Acad Sci U S A. 2016 Feb 23;113(8):2041-6. doi: 10.1073/pnas.1600317113. Epub 2016 Feb 4.
The development of four-dimensional ultrafast electron microscopy (4D UEM) has enabled not only observations of the ultrafast dynamics of photon-matter interactions at the atomic scale with ultrafast resolution in image, diffraction, and energy space, but photon-electron interactions in the field of nanoplasmonics and nanophotonics also have been captured by the related technique of photon-induced near-field electron microscopy (PINEM) in image and energy space. Here we report a further extension in the ongoing development of PINEM using a focused, nanometer-scale, electron beam in diffraction space for measurements of infrared-light-induced PINEM. The energy resolution in diffraction mode is unprecedented, reaching 0.63 eV under the 200-keV electron beam illumination, and separated peaks of the PINEM electron-energy spectrum induced by infrared light of wavelength 1,038 nm (photon energy 1.2 eV) have been well resolved for the first time, to our knowledge. In a comparison with excitation by green (519-nm) pulses, similar first-order PINEM peak amplitudes were obtained for optical fluence differing by a factor of more than 60 at the interface of copper metal and vacuum. Under high fluence, the nonlinear regime of IR PINEM was observed, and its spatial dependence was studied. In combination with PINEM temporal gating and low-fluence infrared excitation, the PINEM diffraction method paves the way for studies of structural dynamics in reciprocal space and energy space with high temporal resolution.
四维超快电子显微镜(4D UEM)的发展不仅能够在图像、衍射和能量空间中以超快分辨率观察原子尺度上光子与物质相互作用的超快动力学,而且在纳米等离子体学和纳米光子学领域中的光子 - 电子相互作用也已通过光子诱导近场电子显微镜(PINEM)的相关技术在图像和能量空间中得以捕捉。在此,我们报告了在PINEM的持续发展中的进一步拓展,即使用聚焦的纳米级电子束在衍射空间中测量红外光诱导的PINEM。衍射模式下的能量分辨率是前所未有的,在200 keV电子束照射下达到0.63 eV,据我们所知,首次清晰分辨出由波长1038 nm(光子能量1.2 eV)的红外光诱导的PINEM电子能谱的分离峰。在与绿色(519 nm)脉冲激发的比较中,在铜金属与真空的界面处,对于相差超过60倍的光通量,获得了相似的一阶PINEM峰幅度。在高能量通量下,观察到了红外PINEM的非线性区域,并研究了其空间依赖性。结合PINEM时间选通和低通量红外激发,PINEM衍射方法为在倒易空间和能量空间中以高时间分辨率研究结构动力学铺平了道路。