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Longitudinal electron bunch measurements at the Stanford superconducting accelerator.

机译:斯坦福大学超导加速器的纵向电子束测量。

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摘要

Measurement of the longitudinal density profile or bunch shape of picosecond and sub-picosecond relativistic particle bunches is an active area of research at many particle accelerator facilities. This thesis evaluates and improves upon two well-known methods of picosecond electron bunch shape measurement: spectral analysis of coherent radiation from the beam, and off-phase acceleration followed by bunch shape analysis in an energy spectrometer. The spectra of coherent transition radiation (CTR) and coherent synchrotron radiation from a 20 MeV picosecond bunched beam at the Stanford Superconducting Accelerator (SCA) are analyzed with bolometric detectors and a Michelson interferometer to infer the bunch length and approximate shape with sub-picosecond resolution. The effects of imperfections in the optical measurement system are discussed and evaluated. These results are compared with measurements of the same beam using a new variation of the off-phase acceleration technique. In this improved technique, the addition of longitudinal beam dispersion from a magnetic chicane located before the off-phase accelerator and energy spectrometer allows measurement of beams with significant energy spread at resolutions approaching 100 femtoseconds for the first time. The improved off-phase acceleration measurements are consistent with the CTR results but yield much better longitudinal information, including the exact bunch shape. The usefulness of the new off-phase acceleration technique is demonstrated by observing the shapes of sharply-peaked, magnetically compressed electron bunches. These measurements help to explain the anomalously bright coherent undulator radiation previously observed as a diagnostic for operation of the FIREFLY free electron laser (FEL) at the SCA. The new off-phase acceleration technique is also used to make the first direct time-domain observations of FEL microbunching of an electron beam, confirming FEL theory and conclusively demonstrating the femtosecond resolution and fidelity of the measurement technique. The potential improvement of this technique and limitations of its resolution to the 10–30 femtosecond range at newer accelerator facilities are discussed. We conclude that, although spectral techniques will remain useful as operational picosecond beam diagnostics, time-domain measurements are necessary to calibrate and validate the optical instruments. The dispersion improved off-phase acceleration technique is an excellent option for this purpose and for future femtosecond beam diagnostics.
机译:皮秒和亚皮秒相对论粒子束的纵向密度分布或束形状的测量是许多粒子加速器设施研究的活跃领域。本文对两种皮秒电子束形状测量方法进行了评估和改进:皮束电子的相干辐射的光谱分析和异相加速,然后在能谱仪中进行束形状分析。使用辐射热探测器和迈克尔逊干涉仪分析了斯坦福超导加速器(SCA)处20 MeV皮秒束束的相干跃迁辐射(CTR)和相干同步加速器辐射的光谱,以亚皮秒分辨率推断束长和近似形状。讨论并评估了光学测量系统中缺陷的影响。将这些结果与使用异相加速度技术的新变化形式对相同光束的测量结果进行比较。在这种改进的技术中,来自位于异相加速器和能量谱仪之前的磁锥的纵向波束色散的添加,使首次以接近100飞秒的分辨率测量具有显着能量散布的波束成为可能。改进的异相加速度测量结果与CTR结果一致,但产生的纵向信息好得多,包括确切的束形状。通过观察尖峰的磁压缩电子束的形状,可以证明新的异相加速技术的有用性。这些测量结果有助于解释先前观察到的异常明亮的相干波状起伏辐射,作为对SCA上的FIREFLY自由电子激光(FEL)进行诊断的方法。新的异相加速技术还用于对电子束进行FEL微聚束的首次直接时域观测,从而确认了FEL理论并最终证明了飞秒分辨率和测量技术的保真度。讨论了该技术的潜在改进以及在新型加速器设施中将其分辨率限制在10-30飞秒范围内的问题。我们得出的结论是,尽管光谱技术在皮秒级操作诊断中仍然很有用,但时域测量对于校准和验证光学仪器是必不可少的。色散改进的异相加速技术是用于此目的和未来飞秒束诊断的绝佳选择。

著录项

  • 作者

    Ricci, Kenneth N.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Physics Optics.; Physics Elementary Particles and High Energy.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;高能物理学;
  • 关键词

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