ARC Centre of Excellence for Antimatter-Matter Studies, Flinders University, GPO Box 2100, Adelaide, South Australia 5001, Australia.
J Chem Phys. 2013 Jul 21;139(3):034306. doi: 10.1063/1.4813237.
Triple differential cross section measurements for the electron-impact ionization of the highest occupied molecular orbitals of tetrahydropyran and 1,4-dioxane are presented. For each molecule, experimental measurements were performed using the (e,2e) technique in asymmetric coplanar kinematics with an incident electron energy of 250 eV and an ejected electron energy of 20 eV. With the scattered electrons being detected at -5°, the angular distributions of the ejected electrons in the binary and recoil regions were observed. These measurements are compared with calculations performed within the molecular 3-body distorted wave model. Here, reasonable agreement was observed between the theoretical model and the experimental measurements. These measurements are compared with results from a recent study on tetrahydrofuran [D. B. Jones, J. D. Builth-Williams, S. M. Bellm, L. Chiari, C. G. Ning, H. Chaluvadi, B. Lohmann, O. Ingolfsson, D. Madison, and M. J. Brunger, Chem. Phys. Lett. 572, 32 (2013)] in order to evaluate the influence of structure on the dynamics of the ionization process across this series of cyclic ethers.
本文呈现了电子碰撞激发四氢吡喃和 1,4-二氧六环的最高占据分子轨道的三重微分截面测量结果。对于每个分子,使用(e,2e)技术在非对称共面几何中进行实验测量,入射电子能量为 250 eV,出射电子能量为 20 eV。散射电子在-5°处被探测到,观察到在双体和反冲区域中出射电子的角分布。这些测量结果与在分子三体畸变波模型内进行的计算进行了比较。在这里,观察到理论模型与实验测量结果之间存在合理的一致性。这些测量结果与最近对四氢呋喃的研究结果进行了比较[D. B. Jones, J. D. Builth-Williams, S. M. Bellm, L. Chiari, C. G. Ning, H. Chaluvadi, B. Lohmann, O. Ingolfsson, D. Madison, and M. J. Brunger, Chem. Phys. Lett. 572, 32 (2013)],以评估结构对这个环状醚系列的电离过程动力学的影响。