TY - JOUR
T1 - Hydrogen-rich gas production from medicinal residue via chemical looping gasification over metal-modified iron oxygen carriers
AU - Riaz, Sania
AU - Quan, Cui
AU - Cortazar, Maria
AU - Lopez, Gartzen
AU - Gao, Ningbo
N1 - Publisher Copyright:
© 2026 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/8/19
Y1 - 2026/8/19
N2 - Medicinal residue (MR) is an abundant but underutilized lignocellulosic waste, and efficient routes for converting it into hydrogen-rich gas remain limited by oxygen carrier (OC) design. Metal modification of iron oxygen carriers provides a practical strategy for tuning hydrogen-oriented biomass chemical looping gasification (BCLG) under steam. Fe, NiFe, KFe, and CuFe OCs were synthesized by a sol-gel route and evaluated under identical conditions in a two-stage fixed-bed reactor. Among the tested formulations, NiFe with a precursor ratio of 2:1 delivered the best overall performance, giving a H2 yield of 37.40 mmol⋅g−1, carbon conversion of 74.13%, and energy efficiency of 96.59%. Structural and redox characterization indicates that this behavior arises from the combined effects of higher surface accessibility, ferrite-type Ni-Fe interaction, and more favorable reducibility. These results identify Ni-modified Fe OCs as promising materials for biomass-to-hydrogen conversion.
AB - Medicinal residue (MR) is an abundant but underutilized lignocellulosic waste, and efficient routes for converting it into hydrogen-rich gas remain limited by oxygen carrier (OC) design. Metal modification of iron oxygen carriers provides a practical strategy for tuning hydrogen-oriented biomass chemical looping gasification (BCLG) under steam. Fe, NiFe, KFe, and CuFe OCs were synthesized by a sol-gel route and evaluated under identical conditions in a two-stage fixed-bed reactor. Among the tested formulations, NiFe with a precursor ratio of 2:1 delivered the best overall performance, giving a H2 yield of 37.40 mmol⋅g−1, carbon conversion of 74.13%, and energy efficiency of 96.59%. Structural and redox characterization indicates that this behavior arises from the combined effects of higher surface accessibility, ferrite-type Ni-Fe interaction, and more favorable reducibility. These results identify Ni-modified Fe OCs as promising materials for biomass-to-hydrogen conversion.
KW - Biomass chemical looping gasification
KW - Hydrogen-rich gas
KW - Iron-based oxygen carriers
KW - Medicinal residue
UR - https://www.scopus.com/pages/publications/105045456819
U2 - 10.1016/j.ijhydene.2026.156477
DO - 10.1016/j.ijhydene.2026.156477
M3 - 文章
AN - SCOPUS:105045456819
SN - 0360-3199
VL - 261
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
M1 - 156477
ER -