Venkataramanababu Sruthi, Li Anyang, Antonov Ivan O, Dragan James B, Stollenwerk Patrick R, Guo Hua, Odom Brian C
Applied Physics Program, Northwestern University, Evanston, 60208, IL, USA.
Department of Physics, Northwestern University, Evanston, 60208, IL, USA.
Nat Commun. 2023 Jul 24;14(1):4446. doi: 10.1038/s41467-023-40135-x.
Optical pumping of molecules provides unique opportunities for control of chemical reactions at a wide range of rotational energies. This work reports a chemical reaction with extreme rotational excitation of a reactant and its kinetic characterization. We investigate the chemical reactivity for the hydrogen abstraction reaction SiO + H → SiOH + H in an ion trap. The SiO cations are prepared in a narrow rotational state distribution, including super-rotor states with rotational quantum number (j) as high as 170, using a broad-band optical pumping method. We show that the super-rotor states of SiO substantially enhance the reaction rate, a trend reproduced by complementary theoretical studies. We reveal the mechanism for the rotational enhancement of the reactivity to be a strong coupling of the SiO rotational mode with the reaction coordinate at the transition state on the dominant dynamical pathway.
分子的光泵浦为在广泛的转动能量范围内控制化学反应提供了独特的机会。这项工作报道了一个反应物具有极高转动激发的化学反应及其动力学表征。我们在离子阱中研究了氢提取反应SiO + H → SiOH + H的化学反应性。使用宽带光泵浦方法,将SiO阳离子制备在狭窄的转动状态分布中,包括转动量子数(j)高达170的超转子态。我们表明,SiO的超转子态显著提高了反应速率,这一趋势在互补的理论研究中得到了再现。我们揭示了反应性转动增强的机制是在主导动力学途径上的过渡态,SiO转动模式与反应坐标的强耦合。