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Megaelectronvolt electron acceleration driven by terahertz surface waves

delete2023-07-13
delete17
PRE
AI
X
Xieqiu Yu
Y
Yushan Zeng
L
Liwei Song
D
Deyin Kong
S
Sibo Hao
J
Jiayan Gui
X
Xiaojun Yang
Y
Yi Xu
吴晓君 (Xiaojun Wu) *
冷雨欣 cover
冷雨欣 (Yuxin Leng)
田野 (Ye Tian)
R
Ruxin Li *
DOI:10.1038/s41566-023-01251-8delete
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Abstract

Abstract

En 中文
Particles at relativistic energies form the basis of acceleration science. The emergence of terahertz-driven acceleration promises vastly smaller and cost-efficient accelerators; however, the field strength inside the acceleration structure has hitherto prevented the energy gain from reaching the megaelectronvolt range. Here we demonstrate an electron energy gain of up to 1.1 MeV and an effective acceleration gradient of up to 210 MV m(-1) driven by terahertz surface waves, using their strong confinement to the waveguide and the fundamental transverse magnetic mode that is favourable for acceleration. The discrepancy in the velocity between the terahertz surface waves and electrons enables potential phase-space control, including temporal compression and spatial focusing. We expect these proof-of-principle results to enable the development of a tunable and highly efficient electron accelerator driven by terahertz surface waves for application in compact microscopy, radiation sources and cancer therapies. When near-infrared femtosecond laser pulses are focused onto a metal wire, relativistic electron acceleration is observed in the attached waveguide. An electron energy gain of 1.1 MeV and an effective acceleration gradient up to 210 MV m(-1) are achieved using the laser-induced terahertz surface waves.

Journal

Nature Photonics cover
Nature Photonics
IF:
32.9
Papers:
4.3K
Citations:
6.1W

Organization

C
chinese academy of sciences
Scholars:
56.5W
Papers: 44.9W
Citations: 704