A PEM fuel cell-type reactor technology that uses nitrogen-containing nanostructured carbon (CNx) catalysts to electrochemically produce tunable concentrations of hydrogen peroxide via a two-electron oxygen reduction reaction, with applications in disinfection and germ-killing actives.
This solution offers an electrochemical method for producing hydrogen peroxide (H2O2) with tunable concentration using a PEM fuel cell-type reactor. The technology targets the germ-killing and disinfection market by enabling on-site, controllable synthesis of H2O2, avoiding the costs and safety issues associated with transporting concentrated commercial H2O2. The approach leverages nitrogen-containing nanostructured carbon (CNx) as a selective electrocatalyst for the two-electron oxygen reduction reaction (ORR), which directly yields H2O2 as the desired product rather than fully reducing oxygen to water.
Core technology:
Key findings from validation:
Planned characterization approaches:
The technology is at an early-to-mid stage of development. Initial half-cell validation using RRDE has confirmed the feasibility of using CNx catalysts for selective H2O2 production and established the relationship between catalyst loading and selectivity. Future work will focus on identifying the active sites governing the two-electron ORR pathway through operando spectroscopy, optimizing catalyst composition and operating conditions in half-cell setups, and eventually scaling toward full PEM fuel cell-type reactor operation. Additional development is needed before commercial deployment, including reactor optimization, long-term stability testing, and integration into practical germ-killing or disinfection systems.
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