Extreme regimes of femtosecond photoemission from a copper cathode in a dc electron gun

P. Pasmans, Van Vugt, van Jp Lieshout, G. Brussaard, O. J. Luiten
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引用次数: 11

Abstract

The femtosecond photoemission yield from a copper cathode and the emittance of the created electron beams has been studied in a 12 MeV/m, 100 keV dc electron gun over a wide range of laser fluence, from the linear photoemission regime until the onset of image charge limitations and cathode damaging. The measured photoemission curves can be described well with available theory which includes the Schottky effect, second-order photoemission, and image charge limitation. The second-order photoemission can be explained by thermally assisted one-photon photoemission (1PPE) and by above-threshold two-photon photoemission (2PPE). Measurements with a fresh cathode suggest that the 2PPE process is dominant. The beam emittance has been measured for the entire range of initial surface charge densities as well. The emittance measurements of space-charge dominated beams can be described well by an envelope equation with generalized perveance. The dc gun produces 0.1 pC bunches with 25 nm rms normalized emittance, corresponding to a normalized brightness usually associated with rf photoguns. In this experimental study the limits of femtosecond photoemission from a copper cathode have been explored and analyzed in great detail, resulting in improved understanding of the underlying mechanisms.
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直流电子枪中铜阴极飞秒光发射的极端状态
在12 MeV/m, 100 keV的直流电子枪中,研究了从线性光电发射到成像电荷限制和阴极损伤的飞秒光电发射产率和产生的电子束的发射度。现有的理论包括肖特基效应、二阶光发射和像电荷限制,可以很好地描述所测得的光发射曲线。二阶光发射可以用热辅助单光子光发射(1PPE)和阈值以上双光子光发射(2PPE)来解释。使用新阴极的测量表明,2PPE过程占主导地位。在整个初始表面电荷密度范围内测量了光束发射度。空间电荷主导光束的发射度测量可以用具有广义性能的包络方程很好地描述。直流枪产生0.1个pC束,rms归一化发射度为25 nm,对应于通常与射频光电枪相关的归一化亮度。在本实验研究中,对铜阴极飞秒光发射的限制进行了非常详细的探索和分析,从而提高了对潜在机制的理解。
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3-8 weeks
期刊介绍: Physical Review Special Topics - Accelerators and Beams (PRST-AB), is a peer reviewed, purely electronic journal, distributed without charge to readers and funded by contributions from national laboratories. It covers the full range of accelerator science and technology: subsystem and component technologies, beam dynamics; accelerator applications; and design, operation, and improvement of accelerators used in science and industry. This includes accelerators for high-energy and nuclear physics, synchrotron radiation production, spallation neutron sources, medical therapy, and intense beam applications.
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