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首页> 外文期刊>The Journal of Chemical Physics >Maximal kinetic energy and angular distribution analysis of spatial map imaging: Application to photoelectrons from a single quantum state of H2O
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Maximal kinetic energy and angular distribution analysis of spatial map imaging: Application to photoelectrons from a single quantum state of H2O

机译:空间地图成像的最大动能和角分布分析:从H2O的单量子状态应用到光电子

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摘要

Dynamical or spatial properties of charged species can be obtained using electrostatic lenses by velocity map imaging (VMI) or spatial map imaging (SMI), respectively. Here, we report an approach for extracting dynamical and spatial information from patterns in SMI images that map the initial coordinates, velocity vectors, and angular distributions of charged particles onto the detector, using the same apparatus as in VMI. Deciphering these patterns required analysis and modeling, involving both their predictions from convolved spatial and velocity distributions and fitting observed images to kinetic energies (KEs) and anisotropy parameters (beta s). As the first demonstration of this capability of SMI, the ensuing photoelectrons resulting from (2 + 1) resonant ionization of water in a selected rotational state were chosen to provide a rigorous basis for comparison to VMI. Operation with low acceleration voltages led to a measured SMI pattern with a unique vertical intensity profile that could be least-squares fitted to yield KE and beta, in good agreement with VMI measurement. Due to the potential for improved resolution and the extended KE range achievable by this new technique, we expect that it might augment VMI in applications that require the analysis of charged particles and particularly in processes with high KE release.
机译:利用静电透镜分别通过速度图成像(VMI)和空间图成像(SMI)获得带电粒子的动力学或空间特性。在这里,我们报告了一种从SMI图像中的模式中提取动力学和空间信息的方法,该图像将带电粒子的初始坐标、速度向量和角分布映射到探测器上,使用与VMI相同的设备。破译这些模式需要分析和建模,包括根据卷积的空间和速度分布进行预测,以及将观测图像与动能(KEs)和各向异性参数(βs)进行拟合。作为SMI这种能力的第一个证明,选择了水在选定旋转状态下(2+1)共振电离产生的光电子,为与VMI进行比较提供了严格的基础。低加速电压下的操作导致测量的SMI模式具有独特的垂直强度分布,可以通过最小二乘拟合产生KE和β,与VMI测量结果非常一致。由于这项新技术有可能提高分辨率并扩大KE范围,我们预计它可能会在需要分析带电粒子的应用中,尤其是在高KE释放的过程中,增强VMI。

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