Developing A Novel Method for H2O2 Production via Integration of Photocatalysis and Underwater Friction
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Date
2025-04-01
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Publisher
Library Information Services, COMSATS University Islamabad, Lahore Campus.
Abstract
Hydrogen peroxide (H2O2) is a commodity chemical, an environmentally friendly oxidant and
difficult to synthesize commodity chemical, but its production in industry is restricted to a
hazardous, energy-intensive, anthraquinone auto-oxidation (AO) process, which is
economically feasible only when used inexpensively at large scales and is highly waste
producing in terms of organic products. This semicentral model of production requires a
transport of highly concentrated, and therefore dangerous, H2O2 solutions. This thesis proposes
a new direction and a decentralized method towards the sustainable production of hydrogen
peroxide through synergistic combination of photocatalysis and underwater mechanical energy,
i.e. friction and sonication to tackle these economic, environmental and safety issues. The
proposed methodology does not need the hazardous chemical inputs, and it is conducted in
ambient conditions. The essence of the research work was in uniform study of a composite
system in suspension (glass powder, or quartz, and polytetrafluoroethylene, or PTFE, particles
in water), which undergoes both UV treatment and intense probe sonication. The synergetic
mechanism assumed in the study is as follows: photocatalysis of the semiconductor material
itself would transform to the electron-hole pair generation process, and mechanical energy
addition would play several important roles (1) stimulating the process of charge separation
and migration, including the triboelectric effect, and the piezoelectric effect on the surface of
the material; (2) producing more radical precursors (or •OH) owing to sonolysis and acoustic
cavitation; and (3) creating active surfaces and reducing mass transfer limitations occurring
continually. To maximize the process a complete parametric study was made that would
analyze the effects of various material concentrations, reaction time, temperature and the effect
of sonication itself in a systematic manner. Conclusively, the results indicate that H2O2 was
successfully produced, and a yield of sufficient increase was realized when sonication was
added, which is the apparent validation of the proposed synergistic effect of improvement. The
best conditions were found, and the process had shown a high degree of reproducibility, which
proves the advantageousness of the practice. Successfully developed a novel, dual-energy
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system for sustainable H₂O₂ production, achieving a maximum yield of 5.48 mgh⁻¹cm⁻² under
optimized conditions (120 min, 25g glass + PTFE, 22-26°C). The present work presents the
main concept of a novel dual-energy target design that uses the forces of both light and
mechanical energy as a source of chemical synthesis. The results mark a milestone in the
establishment of green, on-site, and on-demand technologies of producing H2O2 and the
potential applications that utilize this concept are monumental like water treatment and
disinfection.
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Keywords
TECHNOLOGY::Chemical engineering, FA23, Dr, Dr. Fahad Rahman, H2O2, Photocatalysis, Underwater Friction