Quick Navigation

Topics

Open Quantum Systems Decoherence Quantum Chemistry

Observation of the Parity-Dependent Nonadiabatic Photodissociation of trans-HONO.

PubMed
Authors: Lu Z, Hou S, Wang P, Zhang Y, Li S, Wu F, Li F, Guo R, Yuan D, Xie C, Yuan K, Parker DH, Yang X, Wang X

Year

2026

Paper ID

38715

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

212

Citations

1

Abstract

Quantum state-resolved studies of molecular photodissociation provide an effective view of how electronic and nuclear motion conspire to break chemical bonds. Here, we use parity-resolved photofragment imaging of -HONO photodissociation to show how electronic symmetry actively steers intramolecular vibrational energy redistribution (IVR) at the moment of bond cleavage. By performing Λ-doublet-resolved detection of OH-Π, υ = 0, = 3/2, 5/2, 7/2 with velocity-map ion imaging, we simultaneously determine the vibrational state distributions and angular distributions of the NO-( Π, υ) cofragment. The parity-resolved measurements reveal a striking correlation: one parity class of OH is strongly associated with highly excited NO-υ = 2, whereas the opposite parity favors NO-υ = 1. Analysis of the total kinetic energy release, together with ab initio potential energy and spin-orbit coupling calculations, shows that these propensities fingerprint two competing pathways on electronically distinct excited-state surfaces. A prompt, nearly adiabatic dissociation on an A″ surface preserves electronic symmetry and channels energy into a specific NO stretch, whereas nonadiabatic transfer to an A' surface enables electron-mediated IVR via the out-of-plane mode of -HONO. The dependence of the parity-vibrational correlation further reveals near-resonant coupling between the N=O stretch and a combination band. Our results demonstrate that fragment parity can map electronic symmetry onto product energy flow, offering a general strategy for disentangling electronically mediated and near-resonant vibrational dynamics in complex photochemical reactions.

Why This Paper Matters

  • This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Quantum state-resolved studies of molecular photodissociation provide an effective view of how electronic and nuclear motion conspire to break chemical bonds.

Paper Tools

Become a member to use research tools

Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.

Publisher Share Cite This Paper Copy URL Compare Copy DOI Add to Reading List Category Correction Request

References & Citation Signals

Local Citation Graph (Related-Paper Links)

Current Paper #38715 #68971 On solutions of the Schrödinger... #69042 Simultaneous Fragment Docking f... #69040 Collective Emission in LH2 Asse... #69037 Spin dynamics and ortho-para co...

External citation index: OpenAlex citation signal • updated 2026-06-14 14:54:45

Community Reactions

Quick sentiment from readers on this paper.

Score: 0
Likes: 0 Dislikes: 0

Sign in to react to this paper.

Discussion & Reviews (Moderated)

Average Rating: 0.0 / 5 (0 ratings)

No written reviews yet.