Related Experiment Video
Updated: Feb 1, 2026

Rapid Antimicrobial Susceptibility Testing by Stimulated Raman Scattering Imaging of Deuterium Incorporation in a Single Bacterium
Published on: February 14, 2022
Photon catalysis of deuterium iodide photodissociation
Kallie I Hilsabeck1, Jana L Meiser1, Mahima Sneha1
1Department of Chemistry, Stanford University, Stanford, CA 94305, USA. rnz@stanford.edu.
Abstract:
A catalyst enhances a reaction pathway without itself being consumed or changed. Recently, there has been growing interest in the concept of "photon catalysis" in which nonresonant photons, which are neither absorbed nor scattered, promote reactions. The driving force behind this effect is the interaction between the strong electric field associated with a pulsed, focused laser and the polarizability of the reacting system. In this study, the effect of near-infrared, nonresonant radiation on the photodissociation of deuterium iodide is demonstrated. We use nanosecond pulses rather than time-resolved spectroscopy to investigate the average effect of the electric field on the branching ratio for forming D + I(2P3/2) and D + I(2P1/2). Changes in the measured D-atom speeds between field-free and strong-field conditions confirm substantial differences in dissociation dynamics. Both the magnitude and direction of change in the branching ratios are dependent upon the photodissociation wavelength. Experiments and theoretical calculations confirm that the mechanism for photon catalysis under these conditions is dynamic Stark shifting of potential energy surfaces rather than electric-field-induced alignment of reagent molecules.
More Related Videos
Related Concept Videos
Catalysis
Introduction to Mechanisms of Enzyme Catalysis
¹H NMR of Labile Protons: Deuterium (²H) Substitution
Isotopes
An element's atomic mass, or weight,...
Elements: Chemical Symbols and Isotopes
Some symbols are derived from the common English name of the element; others are abbreviations of the name in another language — Latin, Greek or German. For example, the symbol for aluminum (common name)...
Precipitation of Ions
The equation that describes the equilibrium between solid calcium carbonate and its solvated ions is:

