Enhanced hydrogen production via steam gasification of wood-plastic composites over steel slag-supported Ni catalysts: Unveiling the intrinsic CaO-Fe2O3 synergy

Wood-plastic composites (WPC) are generated in growing amounts and remain difficult to recycle, posing significant challenges for sustainable resource recovery. This study proposes a hydrogen (H 2 ) production strategy via steam gasification of WPC, employing steel slag (SS) as a multifunctional catalyst to improve gas yield and syngas quality. To elucidate the catalytic role of SS, its performance in WPC steam gasification was evaluated and compared with those of individual CaO, individual Fe 2 O 3 , and a physically mixed CaO-Fe 2 O 3 in a lab-scale fixed-bed reactor. Furthermore, the impact of varying Ni loadings, reaction temperatures, and catalyst-to-feedstock (C/F) ratios were assessed, along with catalyst reusability tests. The results demonstrate that SS promotes steam gasification reaction through the intrinsic synergy between Fe 2 O 3 and CaO, where Fe 2 O 3 facilitates oxygen transfer and the water-gas shift (WGS) reaction, while CaO enhances in situ CO 2 adsorption. Consequently, compared with non-catalytic gasification, the H 2 selectivity increased from 21.67 to 31.50 vol%, while the CO 2 selectivity decreased from 29.53 to 26.89 vol%, accompanied by an increase in overall gas yield. The incorporation of Ni further led to a substantial enhancement in gas yield and H 2 selectivity, demonstrating the effectiveness of waste-derived SS as a catalytic material for sustainable H 2 -rich syngas production. Additionally, higher reaction temperatures and C/F ratios resulted in increased gas yield and H 2 selectivity.

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Publication Details

Journal
Industrial Crops and Products
Published
2026-09-30
DOI
https://doi.org/10.1016/j.indcrop.2026.124476
Primary Topic
Thermochemical Biomass Conversion Processes
Type
article
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Enhanced hydrogen production via steam gasification of wood-plastic composites over steel slag-supported Ni catalysts: Unveiling the intrinsic CaO-Fe2O3 synergy

명재욱, Jihyeon Seo, Gwang Hoon Rhee, Myung Won Seo et al.
Industrial Crops and Products
Thermochemical Biomass Conversion Processes
article

Enhanced hydrogen production via steam gasification of wood-plastic composites over steel slag-supported Ni catalysts: Unveiling the intrinsic CaO-Fe2O3 synergy

명재욱, Jihyeon Seo, Gwang Hoon Rhee, Myung Won Seo, Young-Kwon Park, See Hoon Lee
article en

Abstract

Wood-plastic composites (WPC) are generated in growing amounts and remain difficult to recycle, posing significant challenges for sustainable resource recovery. This study proposes a hydrogen (H 2 ) production strategy via steam gasification of WPC, employing steel slag (SS) as a multifunctional catalyst to improve gas yield and syngas quality. To elucidate the catalytic role of SS, its performance in WPC steam gasification was evaluated and compared with those of individual CaO, individual Fe 2 O 3 , and a physically mixed CaO-Fe 2 O 3 in a lab-scale fixed-bed reactor. Furthermore, the impact of varying Ni loadings, reaction temperatures, and catalyst-to-feedstock (C/F) ratios were assessed, along with catalyst reusability tests. The results demonstrate that SS promotes steam gasification reaction through the intrinsic synergy between Fe 2 O 3 and CaO, where Fe 2 O 3 facilitates oxygen transfer and the water-gas shift (WGS) reaction, while CaO enhances in situ CO 2 adsorption. Consequently, compared with non-catalytic gasification, the H 2 selectivity increased from 21.67 to 31.50 vol%, while the CO 2 selectivity decreased from 29.53 to 26.89 vol%, accompanied by an increase in overall gas yield. The incorporation of Ni further led to a substantial enhancement in gas yield and H 2 selectivity, demonstrating the effectiveness of waste-derived SS as a catalytic material for sustainable H 2 -rich syngas production. Additionally, higher reaction temperatures and C/F ratios resulted in increased gas yield and H 2 selectivity.

Industrial Crops and ProductsVol. 252
University of Seoul (KR), Korea Advanced Institute of Science and Technology (KR), Jeonbuk National University (KR)
Openalex Percentile: Top 22%
Thermochemical Biomass Conversion Processes
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Enhanced hydrogen production via steam gasification of wood-plastic composites over steel slag-supported Ni catalysts: Unveiling the intrinsic CaO-Fe2O3 synergy — 명재욱, Jihyeon Seo, et al. · Industrial Crops and Products (2026) | TGRS Research Map | TGRS