Lossless Monochromator in an Ultrafast Electron Microscope Using Near-Field THz Radiation

被引:7
作者
Yannai, Michael [1 ,2 ]
Adiv, Yuval [1 ,2 ]
Dahan, Raphael [1 ,2 ]
Wang, Kangpeng [1 ,2 ,3 ]
Gorlach, Alexey [1 ,2 ]
Rivera, Nicholas [4 ,5 ]
Fishman, Tal [1 ,2 ]
Kruger, Michael [2 ,6 ]
Kaminer, Ido [1 ,2 ]
机构
[1] Technion Israel Inst Technol, Fac Elect & Comp Engn, IL-3200003 Haifa, Israel
[2] Technion Israel Inst Technol, Solid State Inst, IL-3200003 Haifa, Israel
[3] Chinese Acad Sci, Shanghai Inst Opt & Fine Mech, Shanghai 201815, Peoples R China
[4] Harvard Univ, Dept Phys, Cambridge, MA 02138 USA
[5] MIT, Dept Phys, Cambridge, MA 02139 USA
[6] Technion Israel Inst Technol, Dept Phys, IL-3200003 Haifa, Israel
基金
欧洲研究理事会; 欧盟地平线“2020”;
关键词
VIBRATIONAL SPECTROSCOPY; EMISSION; DYNAMICS; SURFACE; DESIGN;
D O I
10.1103/PhysRevLett.131.145002
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The ability to form monoenergetic electron beams is vital for high-resolution electron spectroscopy and imaging. Such capabilities are commonly achieved using an electron monochromator, which energy filters a dispersed electron beam, thus reducing the electron flux to yield down to meV energy resolution. This reduction in flux hinders the use of monochromators in many applications, such as ultrafast transmission electron microscopes (UTEMs). Here, we develop and demonstrate a mechanism for electron energy monochromation that does not reduce the flux-a lossless monochromator. The mechanism is based on the interaction of free-electron pulses with single-cycle THz near fields, created by nonlinear conversion of an optical laser pulse near the electron beam path inside a UTEM. Our experiment reduces the electron energy spread by a factor of up to 2.9 without compromising the beam flux. Moreover, as the electron-THz interaction takes place over an extended region of many tens of microns in free space, the realized technique is highly robust-granting uniform monochromation over a wide area, larger than the electron beam diameter. We further demonstrate the wide tunability of our method by monochromating the electron beam at multiple primary electron energies from 60 to 200 keV, studying the effect of various electron and THz parameters on its performance. Our findings have direct applications in the fast-growing field of ultrafast electron microscopy, allowing time-and energy resolved studies of exciton physics, phononic vibrational resonances, charge transport effects, and optical excitations in the mid IR to the far IR.
引用
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页数:9
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