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Transport and stability of long‐pulse relativistic electron beams in UV laser‐induced ion channels

机译:UV激光诱导离子通道中长脉冲相对论电子束的运输与稳定性

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摘要

Results are presented for the first experiments in which long‐pulse (0.4–1 μsec), relativistic (0.8 MV) electron beams have been transported in the ion focused regime (IFR) in ion channels formed in low pressure diethylaniline gas by means of KrF excimer laser‐induced ionization. These experiments demonstrate that the most efficient (50%–80%) and longest pulse (0.6 μsec) e‐beam transport is obtained with laser‐induced channels over a very narrow gas pressure range (0.3–1.7 mTorr). Higher than optimal pressures cause excess e‐beam‐induced ionization and instability of the electron beam. At lower pressures, the laser‐induced ion channel density is insufficient for initial e‐beam guidance. Transverse oscillations of the electron beam have been measured at a frequency close to that predicted for the ion hose instability. The growth length and wavelength of the transverse oscillations are comparable to the betatron wavelength, further suggesting that these oscillations result from the ion hose instability.
机译:所提出的第一实验中,其中通过KRF在低压二乙基苯胺气体中在离子聚焦状态(IFR)中被传送的长脉冲(0.4-1μSEC),相对论(0.8MV)电子束在低压二乙基苯胺气体中的离子通道中传送准分子激光诱导电离。这些实验表明,最有效的(50%-80%)和最长的脉冲(0.6μSEC)电子束传输在非常窄的气体压力范围内(0.3-1.7 mtorr),在激光诱导的通道获得。高于最佳压力导致过量的电子束引起的电离和电子束的不稳定性。在较低压力下,激光诱导的离子通道密度不足以初始电子束引导。电子束的横向振动已经以接近其预测的离子软管不稳定性的频率测量。横向振荡的生长长度和波长与贝索波长相当,进一步表明这些振荡由离子软管不稳定性产生。

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