Weber Isabelle, Joshi Prasad Ramesh, Anderson David T, Lee Yuan-Pern
Department of Applied Chemistry and Institute of Molecular Science, National Yang Ming Chiao Tung University, Hsinchu 300093, Taiwan.
Department of Chemistry, University of Wyoming, Laramie, Wyoming 82071, United States.
J Phys Chem Lett. 2024 Nov 14;15(45):11361-11373. doi: 10.1021/acs.jpclett.4c02733. Epub 2024 Nov 6.
Cryogenic solid -hydrogen (-H) exhibits pronounced quantum effects, enabling unique experiments that are typically not possible in noble-gas matrices. The diminished cage effect facilitates the production of free radicals via photolysis or photoinduced reactions. Electron bombardment during deposition readily produces protonated and hydrogenated species, such as polycyclic aromatic hydrocarbons, that are important in astrochemistry. In addition, quantum diffusion delocalizes hydrogen atoms in solid -H, allowing efficient H atom reactions with astrochemical species and introducing new concepts in astrochemical models. Some H atom reactions display anomalous temperature behaviors, highlighting the rich chemistry in -H. The investigation on quantum diffusion of heavier atoms and molecules is also important for our understanding of the chemistry in interstellar ice. Additionally, matrix shifts of electronic transitions of polycyclic aromatic hydrocarbons in -H are less divergent than those in solid Ne such that systematic measurements in -H might help in the assignment of diffuse interstellar bands.
低温固态氢(-H)表现出显著的量子效应,使得一些独特的实验成为可能,而这些实验在稀有气体基质中通常是无法进行的。减弱的笼效应有利于通过光解或光诱导反应产生自由基。沉积过程中的电子轰击很容易产生质子化和氢化物种,如多环芳烃,这些在天体化学中很重要。此外,量子扩散使固态-H中的氢原子离域,使得氢原子能够与天体化学物种进行高效反应,并在天体化学模型中引入了新的概念。一些氢原子反应表现出异常的温度行为,突出了-H中丰富的化学性质。对较重原子和分子的量子扩散进行研究,对于我们理解星际冰中的化学过程也很重要。此外,多环芳烃在-H中的电子跃迁的基质位移比在固态氖中的分歧要小,因此在-H中进行系统测量可能有助于漫射星际带的归属。