Paternò G, Cardarelli P, Fantoni S, Masoumi F, Mettivier G, Cialdi S, Taibi A
Appl Opt. 2023 Jun 10;62(17):4399-4408. doi: 10.1364/AO.489239.
X-ray sources based on the inverse Compton interaction between a laser and a relativistic electron beam are emerging as a promising compact alternative to synchrotron for the production of intense monochromatic and tunable radiation. The emission characteristics enable several innovative imaging techniques, including dual-energy K-edge subtraction (KES) imaging. The performance of these techniques is optimal in the case of perfectly monochromatic x-ray beams, and the implementation of KES was proven to be very effective with synchrotron radiation. Nonetheless, the features of inverse Compton scattering (ICS) sources make them good candidates for a more compact implementation of KES techniques. The energy and intensity distribution of the emitted radiation is related to the emission direction, which means different beam qualities in different spatial positions. In fact, as the polar angle increases, the average energy decreases, while the local energy bandwidth increases and the emission intensity decreases. The scope of this work is to describe the impact of the local energy distribution variations on KES imaging performance. By means of analytical simulations, the reconstructed signal, signal-to-noise ratio, and background contamination were evaluated as a function of the position of each detector pixel. The results show that KES imaging is possible with ICS x-ray beams, even if the image quality slightly degrades at the detector borders for a fixed collimation angle and, in general, as the beam divergence increases. Finally, an approach for the optimization of specific imaging tasks is proposed by considering the characteristics of a given source.
基于激光与相对论电子束之间的逆康普顿相互作用的X射线源,正成为一种有前景的紧凑型替代同步加速器的设备,用于产生高强度单色且可调谐的辐射。其发射特性使得几种创新成像技术成为可能,包括双能K边减影(KES)成像。在完美单色X射线束的情况下,这些技术的性能最佳,并且KES成像在同步辐射中已被证明非常有效。尽管如此,逆康普顿散射(ICS)源的特性使其成为更紧凑地实施KES技术的理想选择。发射辐射的能量和强度分布与发射方向有关,这意味着在不同空间位置具有不同的光束质量。实际上,随着极角增大,平均能量降低,而局部能量带宽增加且发射强度降低。这项工作的目的是描述局部能量分布变化对KES成像性能的影响。通过解析模拟,评估了重建信号、信噪比和背景污染与每个探测器像素位置的函数关系。结果表明,即使对于固定的准直角度,在探测器边界处图像质量略有下降,并且一般来说随着光束发散增加,使用ICS X射线束进行KES成像也是可行的。最后,通过考虑给定源的特性,提出了一种优化特定成像任务的方法。