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February 26, 2026Industrial & Engineering Chemistry Research2 citationsOpen Access

CO 2 Hydrogenation Using Nonthermal Plasma: Effects of Packed Beds on Plasma Discharge Behavior

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SPSathya M. PereraPennsylvania State UniversityBEBerkay EkinciPennsylvania State UniversitySBSven G. BilénPennsylvania State University

Key Points

  • To assess the influence of dielectric supports on plasma discharge behavior and reactor performance during co2 hydrogenation.
  • Systematic evaluation of dielectric supports in a dielectric barrier discharge reactor
  • Measurement of co2 conversion rates under various plasma powers
  • Comparison of discharge behaviors across different packing materials
  • Al2O3 achieved the highest co2 conversion of 42% at 23 W
  • CeO2 exhibited only ∼5% co2 conversion due to diffuse discharge formation
  • Discharge behavior was invariant to particle size for CeO2 beds

Abstract

Nonthermal plasma-assisted catalysis offers a promising approach to activate strong chemical bonds such as those in CO2 and transform such stable molecules into value-added products under ambient conditions. Advancement in this field requires building upon understanding of plasma–catalyst interactions that dictate product selectivity, conversion, and energy efficiency. This study aims to systematically assess how different dielectric supports influence plasma discharge behavior and reactor performance during CO2 hydrogenation in a dielectric barrier discharge reactor. The dielectric constant of the packing material strongly influences discharge behavior and, consequently, catalytic activity. Among the materials examined, Al2O3 exhibited the highest CO2 conversion of 42% at a plasma power of 23 W, whereas CeO2 yielded the lowest (∼5%) due to the formation of a diffuse discharge, in contrast to localized discharges or surface streamers. CO2 conversion over CeO2 beds of a given particle size were nearly identical irrespective of changes in particle size, further supporting this discharge-dependent behavior. Notably, this work highlights the importance of comparing reactor performance for packed beds under nonpartial discharge operation.

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Cite This Study

Perera et al. (2026) studied this question.

synapsesocial.com/papers/699f95841bc9fecf3dab33f2https://doi.org/10.1021/acs.iecr.5c04396
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