Related Experiment Video
Updated: Apr 2, 2026

Thermochemical Studies of NiII and ZnII Ternary Complexes Using Ion Mobility-Mass Spectrometry
Published on: June 8, 2022
Electronic-state-resolved master equation study of energy transfer and electron-impact chemical kinetics in the
Song Hyun Seo1, Kyu Hong Kim1,2, Jae Gang Kim3
1Department of Aerospace Engineering, Seoul National University, Seoul 08826, Republic of Korea.
Abstract:
This work presents a detailed investigation of electronic energy transfer mechanisms and electron-impact-induced chemical kinetics in nitrogen systems using an electronic-state-resolved master equation analysis. The master equation results demonstrate that although the state-specific distributions are highly non-Boltzmann, the ensemble-averaged electronic energy relaxation consistently follows first-order behavior, supporting the applicability of a Landau-Teller-type formulation at the macroscopic level. Comparison of relaxation times across collision partners and energy modes reveals pronounced collider-dependent behavior and confirms that electron-impact excitation proceeds several orders of magnitude faster than heavy-particle impact. The results further indicate that collisional energy exchange is governed not only by the electronic level structure but also by the intrinsic rate characteristics of the dominant collision mechanism. Analysis of electron-impact chemistry further indicates distinct ordering between energy-relaxation and chemical timescales: dissociation of N2+ occurs after near-thermalization of the electronic mode, whereas reactions of N and N2 predominantly take place under strong electronic nonequilibrium. State-resolved population dynamics highlight preferential ionization and dissociation pathways from selected excited states, which significantly influence the partitioning of electronic energy during chemical reactions. The derived global rate coefficients and energy-loss ratios provide physically grounded macroscopic parameters for reduced-order modeling, enabling consistent closure of chemistry-electronic coupling in multi-temperature formulations without reliance on empirical scaling factors.
More Related Videos
09:18Time-resolved ElectroSpray Ionization Hydrogen-deuterium Exchange Mass Spectrometry for Studying Protein Structure and Dynamics
Published on: April 17, 2017
05:51Isotopic Effect in Double Proton Transfer Process of Porphycene Investigated by Enhanced QM/MM Method
Published on: July 19, 2019
Related Concept Videos
π Electron Effects on Chemical Shift: Overview
Energy Transfer in Chemical Reactions
Chemical Ionization (CI) Mass Spectrometry
Free Energy Changes for Nonstandard States
Multi-Step Reactions
Ionization Energy