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Updated: Jan 24, 2026

Combining Solid-state and Solution-based Techniques: Synthesis and Reactivity of ChalcogenidoplumbatesII or IV
Published on: December 29, 2016
Chlorine atom diffusion and reactivity in solid parahydrogen at 1.6-4.3 K.
Ibrahim Muddasser1, Anh H M Nguyen1, Elvis Gyamfi1
1Department of Chemistry, University of Wyoming, Laramie, Wyoming 82071, USA.
Chemical impurities like chlorine atoms move through solid parahydrogen (pH2) via quantum diffusion. Near-infrared radiation significantly accelerates this diffusion process, impacting reaction kinetics.
Area of Science:
- Quantum Solid-State Physics
- Chemical Kinetics
- Spectroscopy
Background:
- Quantum solids exhibit unique properties, including impurity delocalization at 0 K due to zero-point energy.
- Various species are mobile in solid parahydrogen (pH2) at low temperatures, but diffusion mechanisms remain unclear for some.
Purpose of the Study:
- To investigate the diffusion and reactivity of chlorine (Cl) atoms in solid pH2.
- To elucidate the diffusion mechanism of Cl atoms in solid pH2 by studying the Cl + CO reaction.
- To examine the effect of near-infrared (NIR) radiation on impurity diffusion in solid pH2.
Main Methods:
- Fourier transform infrared (FTIR) spectroscopy was employed to study the reaction kinetics.
- Infrared spectra of ClCO and OC-HCl in solid pH2 were recorded and assigned.
- Eight kinetic experiments were conducted at 4.0 K with varying initial CO concentrations.
Main Results:
- The rate constant for the Cl + CO reaction was found to be inversely proportional to CO concentration, consistent with quantum diffusion.
- Exposure to near-infrared (NIR) radiation (4200–4700 cm⁻¹) accelerated the diffusion of Cl and CO in solid pH2.
- Spectra of ClCO and OC-HCl were identified, providing insights into reaction intermediates and products.
Conclusions:
- The diffusion of Cl atoms in solid pH2 exhibits characteristics of quantum diffusion.
- NIR radiation can significantly enhance the mobility of impurities within solid pH2.
- FTIR spectroscopy is a valuable tool for studying diffusion-controlled reactions in quantum solids.
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