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Laser-wakefield accelerators for medical phase contrast imaging: Monte Carlo simulations and experimental studies

机译:用于医学相衬成像的激光尾场加速器:蒙特卡罗模拟和实验研究

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X-ray phase contrast imaging (X-PCi) is a very promising method of dramatically enhancing the contrast of X-ray images of microscopic weakly absorbing objects and soft tissue, which may lead to significant advancement in medical imaging with high-resolution and low-dose. The interest in X-PCi is giving rise to a demand for effective simulation methods. Monte Carlo codes have been proved a valuable tool for studying X-PCi including coherent effects. The laser-plasma wakefield accelerators (LWFA) is a very compact particle accelerator that uses plasma as an accelerating medium. Accelerating gradient in excess of 1 GV/cm can be obtained, which makes them over a thousand times more compact than conventional accelerators. LWFA are also sources of brilliant betatron radiation, which are promising for applications including medical imaging. We present a study that explores the potential of LWFA-based betatron sources for medical X-PCi and investigate its resolution limit using numerical simulations based on the FLUKA Monte Carlo code, and present preliminary experimental results.
机译:X射线相衬成像(X-PCi)是一种非常有前途的方法,可以显着增强微观弱吸收物体和软组织的X射线图像的对比度,这可能会导致高分辨率和低分辨率的医学成像取得重大进展-剂量。对X-PCi的兴趣引起了对有效仿真方法的需求。蒙特卡洛代码已被证明是研究X-PCi包括相干效应的有价值的工具。激光等离子体尾波场加速器(LWFA)是一种非常紧凑的粒子加速器,它使用等离子体作为加速介质。可以获得超过1 GV / cm的加速梯度,这使它们的体积比传统的加速器大千倍。 LWFA也是灿烂的电子感应加速器辐射的来源,有望用于包括医学成像在内的应用。我们提出了一项研究,探索基于LWFA的电子感应加速器在医学X-PCi中的潜力,并使用基于FLUKA蒙特卡洛代码的数值模拟研究其分辨率极限,并提供了初步的实验结果。

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