TY - JOUR
T1 - Development of ruthenium-based catalysts for ammonia synthesis via polyol reduction method
AU - Anello, Gaetano
AU - De Luna, Giulia
AU - De Felice, Giulia
AU - Saker, Assia
AU - Di Felice, Luca
AU - Gallucci, Fausto
PY - 2024/10/11
Y1 - 2024/10/11
N2 - In this work, ruthenium-based catalysts were synthesized via polyol reduction method with different metal oxides as support and caesium as promoter. The samples were characterized through XRD, ICP-OES, nitrogen physisorption and XPS. Then, the catalysts were tested for ammonia synthesis in the range of temperatures 548–673 K and pressures 1–5 MPa. The synthesized catalysts allowed an ammonia production rate approximately four times higher compared with the performances of similar catalytic formulations in literature (tested at same conditions). The best performance were achieved with the Cs–Ru/CeO2 (1%wt Cs, 5%wt Ru), reaching an ammonia production of nearly 73 mmol h−1∙gcat−1 at 673 K and 5 MPa. As showed by the XPS analysis, the increased Ce3+/Ce4+ ratio led to an enhancement of oxygen vacancies, which favoured the dissociative adsorption of nitrogen, that is the limiting step in the ammonia synthesis reaction. Such high catalytic activity can be ascribed to the beneficial effect of the polyol reduction method for the maximization of the exposure of active sites.
AB - In this work, ruthenium-based catalysts were synthesized via polyol reduction method with different metal oxides as support and caesium as promoter. The samples were characterized through XRD, ICP-OES, nitrogen physisorption and XPS. Then, the catalysts were tested for ammonia synthesis in the range of temperatures 548–673 K and pressures 1–5 MPa. The synthesized catalysts allowed an ammonia production rate approximately four times higher compared with the performances of similar catalytic formulations in literature (tested at same conditions). The best performance were achieved with the Cs–Ru/CeO2 (1%wt Cs, 5%wt Ru), reaching an ammonia production of nearly 73 mmol h−1∙gcat−1 at 673 K and 5 MPa. As showed by the XPS analysis, the increased Ce3+/Ce4+ ratio led to an enhancement of oxygen vacancies, which favoured the dissociative adsorption of nitrogen, that is the limiting step in the ammonia synthesis reaction. Such high catalytic activity can be ascribed to the beneficial effect of the polyol reduction method for the maximization of the exposure of active sites.
KW - Ammonia synthesis
KW - Ceria support
KW - Oxygen vacancies
KW - Polyol reduction method
KW - Ruthenium catalyst
UR - http://www.scopus.com/inward/record.url?scp=85202721134&partnerID=8YFLogxK
U2 - 10.1016/j.ijhydene.2024.08.408
DO - 10.1016/j.ijhydene.2024.08.408
M3 - Article
AN - SCOPUS:85202721134
SN - 0360-3199
VL - 86
SP - 922
EP - 930
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
ER -