Vibrational Quantum-State-Controlled Reactivity in the O2+ + C3H4 Reaction. Journal Article uri icon

Overview

abstract

  • Quantum-state-controlled reactivity is a long-standing goal in the field of physical chemistry. In this work, we explore the vibrational-state-dependent behavior of the ion-molecule reaction between O2+ in distinct vibrational states and two isomers of C3H4, allene (H2C3H2) and propyne (H3C3H). While most products are formed regardless of the vibrational state of O2+, the branching ratios are influenced by vibrational excitation, and a new product, C2O+, appears exclusively in the excited-state reactions. This selective formation of C2O+ demonstrates that vibrational excitation can effectively activate a reaction pathway, providing direct evidence of quantum-state control in the reactivity. These results represent an important step toward the goal of quantum-state-controlled chemistry in molecular systems.

publication date

  • April 16, 2026

Date in CU Experts

  • April 16, 2026 3:58 AM

Full Author List

  • Zagorec-Marks C; Kocheril GS; Kieft T; Krohn OA; Martí C; Softley TP; Zádor J; Lewandowski HJ

author count

  • 8

Other Profiles

Electronic International Standard Serial Number (EISSN)

  • 1948-7185

Additional Document Info

start page

  • 4621

end page

  • 4629

volume

  • 17

issue

  • 15