Related Experiment Video
Updated: Jun 16, 2025

On-line Analysis of Nitrogen Containing Compounds in Complex Hydrocarbon Matrixes
Published on: August 5, 2016
Computational Investigation of Radical- and Catalyst-Assisted Decomposition of CH2NO• to HCN
Sourav Ghoshal1,2, Pranab Sarkar1
1Department of Chemistry, Visva-Bharati University, Santiniketan, 731235, India.
Abstract:
Hydrogen cyanide (HCN) is a chemically and prebiotically important molecule found in the Earth's atmosphere and other planetary environments. Previous photochemical studies have proposed that HCN could originate from reactions between methane photolysis products, such as methyl radical (CH3 •) and triplet methylene (3CH2), and reactive nitrogen species like atomic nitrogen (N) and nitric oxide (NO). In this study, we introduce a new atmospheric route to HCN formation involving the decomposition of CH2NOX intermediates, which are formed via the recombination of CH2NO• with other atmospheric reactive species (X) such as NO, OH•, and CH3 •. Using high-level quantum chemical calculations [CCSD(T)//M06-2X/6-311++G(3df,3pd)], we investigate the mechanism of CH2NOX decomposition towards HCN formation via uncatalyzed and catalyst-assisted (H2O, NH3, HCl and H2SO4) pathways. Kinetic analysis based on transition state theory (TST) reveals that, while CH2NONO and CH2NOOH exhibit significant kinetic barriers under ambient conditions, CH2NOCH3 undergoes rapid decomposition, particularly when catalyzed by H2SO4. Among all species examined, the H2SO4-assisted decomposition of CH2NOCH3 shows the highest rate enhancement relative to its uncatalyzed counterpart. This work not only introduces CH2NO• as a novel intermediate in atmospheric nitrogen chemistry but also highlights the key role of CH3 • (a methane photolysis product) and H2SO4 in enabling efficient HCN production in both early and modern Earth atmospheres.
Related Concept Videos
Radical Substitution: Hydrogenolysis of Alkyl Halides with Tributyltin Hydride
The bonds formed in this reaction are stronger than the bonds broken, making it energetically favorable. The reaction follows a radical chain mechanism similar to radical halogenation...
Radical Reactivity: Concentration Effects
Radical Reactivity: Overview
Radical Halogenation: Stereochemistry
Halogenation to form a new chiral center:
Radical Anti-Markovnikov Addition to Alkenes: Mechanism
The mechanism starts with chain initiation, which involves two steps. In the first chain initiation step, a weak peroxide bond is homolytically cleaved upon mild heating to form two alkoxy radicals. In the second initiation step, a hydrogen atom is abstracted by the alkoxy...
Radical Formation: Elimination

