Sustained iron-nanoparticle exposure reveals concentration-dependent enhancement and inhibition during continuous hydrogen production from brewer's spent grain hydrolysate

Iron-based nanoparticles can enhance dark fermentation, but sustained-exposure effects remain unclear. This study aimed to investigate continuous supplementation with iron (III) oxide nanoparticles (FeNPs) during dark-fermentative hydrogen production from brewer's spent grain (BSG) hydrolysate. A continuous stirred-tank reactor was operated sequentially without FeNPs and at 50, 100, and 200 mg FeNPs/L. Hydrogen productivity was highest at 100 mg FeNPs/L, reaching 8.4 L H 2 /L-d (0 °C, 1 atm), 15% above nanoparticle-free operation. Substrate utilization and acetate concentration were highest, while Clostridium remained dominant. At 200 mg FeNPs/L, sustained exposure coincided with persistent productivity decline and a community shift from Clostridium toward Lentilactobacillus . Preliminary estimates showed greater hydrogen energy recovery at 100 mg FeNPs/L, but the gain did not offset single-use laboratory-grade FeNP costs. These findings identify sustained FeNP exposure as a key variable in continuous operation and provide a process-level basis for jointly evaluating hydrogen productivity, reactor stability, and material cost.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-09-17
DOI
https://doi.org/10.1016/j.ijhydene.2026.157601
Primary Topic
Anaerobic Digestion and Biogas Production
Type
article
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article

Sustained iron-nanoparticle exposure reveals concentration-dependent enhancement and inhibition during continuous hydrogen production from brewer's spent grain hydrolysate

H.J. Coss y Leon Monterde, Elizabeth León‐Becerril, Octavio García‐Depraect, Jacobo Pérez-Barragán et al.
International Journal of Hydrogen Energy
Anaerobic Digestion and Biogas Production
article

Sustained iron-nanoparticle exposure reveals concentration-dependent enhancement and inhibition during continuous hydrogen production from brewer's spent grain hydrolysate

H.J. Coss y Leon Monterde, Elizabeth León‐Becerril, Octavio García‐Depraect, Jacobo Pérez-Barragán, Ninfa Alexandra Díaz-Carreón
article en

Abstract

Iron-based nanoparticles can enhance dark fermentation, but sustained-exposure effects remain unclear. This study aimed to investigate continuous supplementation with iron (III) oxide nanoparticles (FeNPs) during dark-fermentative hydrogen production from brewer's spent grain (BSG) hydrolysate. A continuous stirred-tank reactor was operated sequentially without FeNPs and at 50, 100, and 200 mg FeNPs/L. Hydrogen productivity was highest at 100 mg FeNPs/L, reaching 8.4 L H 2 /L-d (0 °C, 1 atm), 15% above nanoparticle-free operation. Substrate utilization and acetate concentration were highest, while Clostridium remained dominant. At 200 mg FeNPs/L, sustained exposure coincided with persistent productivity decline and a community shift from Clostridium toward Lentilactobacillus . Preliminary estimates showed greater hydrogen energy recovery at 100 mg FeNPs/L, but the gain did not offset single-use laboratory-grade FeNP costs. These findings identify sustained FeNP exposure as a key variable in continuous operation and provide a process-level basis for jointly evaluating hydrogen productivity, reactor stability, and material cost.

International Journal of Hydrogen EnergyVol. 275
Universidad de Valladolid (ES), Secretaría de Salud de Jalisco (MX)
Openalex Percentile: Top 15%
Anaerobic Digestion and Biogas Production
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Sustained iron-nanoparticle exposure reveals concentration-dependent enhancement and inhibition during continuous hydrogen production from brewer's spent grain hydrolysate — H.J. Coss y Leon Monterde, Elizabeth León‐Becerril, et al. · International Journal of Hydrogen Energy (2026) | TGRS Research Map | TGRS