Review of the methods to form hydrogen peroxide in electrical discharge plasma with liquid water
Обзор методов образования пероксида водорода в электрическом разряде в плазме с жидкой водой
2011-04-12
SCID: 54.1/tp6gw47j
Discuss with AI
electrical discharge plasmaenergy yieldhydrogen peroxide generationliquid water dropletsplasma–liquid interface
Figures from the paper
Abstract (AI)
This paper presents a review of the literature dealing with the formation of hydrogen peroxide from plasma processes. Energy yields for hydrogen peroxide generation by plasma from water span approximately three orders of magnitude from 4 × 10 −2 to 80 g kWh −1 . A wide range of plasma processes from rf to pulsed, ac, and dc discharges directly in the liquid phase have similar energy yields and may thus be limited by radical quenching processes at the plasma–liquid interface. Reactor modification using discharges in bubbles and discharges over the liquid phase can provide modest improvements in energy yield over direct discharge in the liquid, but the interpretation is complicated by additional chemical reactions of gas phase components such as ozone and nitrogen oxides. The highest efficiency plasma process utilizes liquid water droplets that may enhance efficiency by sequestering hydrogen peroxide in the liquid and by suppressing decomposition reactions by radicals from the gas and at the interface. Kinetic simulations of water vapor reported in the literature suggest that plasma generation of hydrogen peroxide should approach 45% of the thermodynamics limit, and this fact coupled with experimental studies demonstrating improvements with the presence of the condensed liquid phase suggest that further improvements in energy yield may be possible. Plasma generation of hydrogen peroxide directly from water compares favorably with a number of other methods including electron beam, ultrasound, electrochemical and photochemical methods, and other chemical processes.
Key Findings
1
Bubble and above-liquid discharges provide modest energy-yield improvements, but interpretation is complicated by gas-phase ozone and nitrogen oxide chemistry.
2
Direct plasma generation of hydrogen peroxide from water compares favorably with electron-beam, ultrasonic, electrochemical, photochemical, and other chemical methods.
3
Kinetic simulations indicate hydrogen peroxide generation could approach 45% of the thermodynamic limit, implying substantial scope for improving plasma energy yields.
4
Liquid-water-droplet plasma processes achieve the highest efficiency, likely by sequestering hydrogen peroxide and suppressing radical-driven decomposition.
5
RF, pulsed, AC, and DC discharges directly in liquid water show similar energy yields, suggesting limitation by radical quenching at the plasma–liquid interface.
6
Reported plasma-based hydrogen peroxide energy yields from water span approximately three orders of magnitude, from 4 × 10−2 to 80 g kWh−1.
Research Object
Hydrogen peroxide formation from water by electrical discharge plasma processes
Research Subject
Energy yield and formation efficiency, including the effects of plasma–liquid interfacial radical quenching, reactor configuration, and condensed-liquid-phase suppression of decomposition
Publication Details
Publication Date
2011-04-12
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest