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Nonadiabatic dissociation dynamics in H2O: Competition between rotationally and nonrotationally mediated pathways

机译:H2O中的非绝热解离动力学:旋转和非旋转介导的途径之间的竞争

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摘要

The photochemistry of H2O in the VUV region is important in interstellar chemistry. Whereas previous studies of the photodissociation used excitation via unbound states, we have used a tunable VUV photolysis source to excite individual levels of the rotationally structured C̃ state near 124 nm. The ensuing OH product state distributions were recorded by using the H-atom Rydberg tagging technique. Experimental results indicate a dramatic variation in the OH product state distributions and its stereodynamics for different resonant states. Photodissociation of H2O(C̃) in rotational states with k′a = 0 occurs exclusively through a newly discovered homogeneous coupling to the à state, leading to OH products that are vibrationally hot (up to v = 13), but rotationally cold. In contrast, for H2O in rotationally excited states with k′a > 0, an additional pathway opens through Coriolis-type coupling to the B̃ state surface. This yields extremely rotationally hot and vibrationally cold ground state OH(X) and electronically excited OH(A) products, through 2 different mechanisms. In the case of excitation via the 110 ← 000 transition the H atoms for these 2 product channels are ejected in completely different directions. Quantum dynamical models for the C̃-state photodissociation clearly support this remarkable dynamical picture, providing a uniquely detailed illustration of nonadiabatic dynamics involving at least 4 electronic surfaces.
机译:VUV区域中H2O的光化学在星际化学中很重要。以前对光解离的研究使用的是通过未结合态激发的光,而我们使用可调VUV光解源来激发旋转结构的 C 的各个水平mo 状态在124 nm附近。通过使用H-atom Rydberg标签技术记录随后的OH产物状态分布。实验结果表明,OH产物状态分布及其立体动力学在不同共振状态下发生了巨大变化。旋转状态下k'a = 0的H2O( C ̃ )发生光解离仅通过新发现的与Ã的均相偶合,导致OH产品振动热(最高v = 13),但旋转冷。相反,对于k'a> 0的旋转激发态下的H2O,通过与 B ̃ 状态表面。通过两种不同的机理,这会产生极高的旋转热和振动冷基态OH(X)和电子激发的OH(A)产品。在通过110←000跃迁激发的情况下,这两个产物通道的H原子以完全不同的方向射出。 C ̃ 状态光解离的量子动力学模型清楚地支持了这一非凡的动力学图景,提供涉及至少4个电子表面的非绝热动力学的独特详细说明。

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