首页> 外文会议>NATO Advanced Research Workshop on Electron-Photon Interaction in Dense Media Jun 25-29, 2001 Nor-Hamberd, Yerevan, Armenia >OPTICAL TRANSITION AND DIFFRACTION RADIATION DIAGNOSTICS FOR RELATIVISTIC CHARGED PARTICLE BEAMS
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OPTICAL TRANSITION AND DIFFRACTION RADIATION DIAGNOSTICS FOR RELATIVISTIC CHARGED PARTICLE BEAMS

机译:相对论带电粒子束的光学跃迁和衍射辐射诊断。

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Transition radiation (TR) and diffraction radiation (DR) are produced by charged particles passing through or by regions of variable permitivity The perturbation of the field surrounding the charged particle causes a radiation field to be generated. The radiation eminates from the position of the particle as it crosses through or minimally impacts the boundary. TR's spatial, angular and frequency distributions have been well characterized both theoretically and experimentally over a wide range of charged particle energies and wavelengths ― from x-ray to radio wavelengths. The properties of TR reflect those of the particle(s) producing the radiation, so it is natural that TR has been successfully employed as a diagnostic for the energy, spatial profile, divergence and emittance of charged particle beams. One of the first applications of TR, and still one that is commonly used for high energy and nuclear physics experiments, is as a particle discriminator. This is accomplished utilizing the known dependence of intensity of the radiation in the x-ray regime with energy. In recent years the applications of TR to beam diagnostics, particularly in the optical and near IR portions of the spectrum, have grown tremendously. It is now possible using incoherent and coherent TR to characterize both the transverse and longitudinal phase space of a charged particle beam with high precision. In contrast to TR, diffraction radiation, despite its long theoretical history, has been little studied experimentally and its application to beam diagnostics has only recently been investigated. We review here the diagnostic applications of incoherent optical TR and DR to the measurement of the transverse phase space of relativistic electron beams, a subject in which we have been intimately involved over the last twenty years.
机译:过渡辐射(TR)和衍射辐射(DR)是通过带电粒子穿过或通过介电常数可变的区域而产生的。带电粒子周围的场的扰动会产生辐射场。当粒子穿过边界或对边界的影响最小时,辐射将从粒子的位置消失。从理论上和实验上,TR的空间,角度和频率分布都已在很宽的带电粒子能量和波长范围(从X射线到无线电波长)中得到了很好的表征。 TR的性质反映了产生辐射的一个或多个粒子的性质,因此自然而然将TR成功地用于诊断带电粒子束的能量,空间分布,发散和发射。 TR的最初应用之一是粒子鉴别器,现在仍然是高能和核物理实验中常用的应用。利用已知的X射线范围中的辐射强度与能量之间的关系来实现这一点。近年来,TR在光束诊断中的应用,特别是在光谱的光学和近红外部分,已经得到了极大的发展。现在可以使用非相干和相干TR来高精度地表征带电粒子束的横向和纵向相空间。与TR相比,尽管其具有悠久的理论历史,但对衍射辐射的实验研究却很少,其在射线诊断中的应用直到最近才得到研究。我们在这里回顾了不相干光学TR和DR在相对论电子束横向相空间测量中的诊断应用,在过去的二十年中我们一直密切参与这一主题。

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