TY - JOUR
T1 - Revealing the spin-polarization-induced d-band splitting effect of Fe-series atoms on the dehydrogenation performance of Pt/TiO2 catalyst for Dodecahydro-N-ethylcarbazole
AU - Li, Linsen
AU - Yang, Zhuwei
AU - Zhang, Riguang
AU - Lin, Li
AU - Jiang, Zhao
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2026/1/15
Y1 - 2026/1/15
N2 - Liquid organic hydrogen carriers (LOHC) technology has emerged as one of the most promising novel hydrogen storage approaches, whose bottleneck is the need to develop efficient and low-cost dehydrogenation catalysts. Among various catalytic systems, Pt-based bimetallic catalysts have attracted significant research attention due to their superior catalytic performance and potential for cost reduction. In this study, we conducted a systematic investigation into the influence of the introduction of Fe-series atoms (Fe, Co, Ni) on 12H-NECZ dehydrogenation reactions of Pt/TiO2 catalyst. The results demonstrate that the introduced Fe-series atoms facilitate enhanced orbital hybridization, particularly between their 3d orbitals and the Pt-5d orbitals, leading to a pronounced spin polarization effect, modulating the d-band splitting (Δεd). These atoms have excellent electron migration properties, which increase the electron density around the Pt atoms. This electronic restructuring modulates the dual d-band centers of the metal Pt, weakens the strong adsorption of reaction intermediates/products and dramatically reduces the energy barrier of the breaking of C–H bonds. Specifically, the rate-determining-step (RDS) barrier of the most effective Pt3Co/TiO2 catalyst is 0.43 eV lower than that of Pt/TiO2, which is attributed to the moderate spin polarization strength and optimal electron structure, balancing the adsorption of intermediates/products (εd↑) and hydrogen (εd↓). This study establishes a theoretical foundation for the design of cost-effective, high-performance dehydrogenation catalysts for LOHC.
AB - Liquid organic hydrogen carriers (LOHC) technology has emerged as one of the most promising novel hydrogen storage approaches, whose bottleneck is the need to develop efficient and low-cost dehydrogenation catalysts. Among various catalytic systems, Pt-based bimetallic catalysts have attracted significant research attention due to their superior catalytic performance and potential for cost reduction. In this study, we conducted a systematic investigation into the influence of the introduction of Fe-series atoms (Fe, Co, Ni) on 12H-NECZ dehydrogenation reactions of Pt/TiO2 catalyst. The results demonstrate that the introduced Fe-series atoms facilitate enhanced orbital hybridization, particularly between their 3d orbitals and the Pt-5d orbitals, leading to a pronounced spin polarization effect, modulating the d-band splitting (Δεd). These atoms have excellent electron migration properties, which increase the electron density around the Pt atoms. This electronic restructuring modulates the dual d-band centers of the metal Pt, weakens the strong adsorption of reaction intermediates/products and dramatically reduces the energy barrier of the breaking of C–H bonds. Specifically, the rate-determining-step (RDS) barrier of the most effective Pt3Co/TiO2 catalyst is 0.43 eV lower than that of Pt/TiO2, which is attributed to the moderate spin polarization strength and optimal electron structure, balancing the adsorption of intermediates/products (εd↑) and hydrogen (εd↓). This study establishes a theoretical foundation for the design of cost-effective, high-performance dehydrogenation catalysts for LOHC.
KW - Catalytic mechanism
KW - D-band center
KW - Dodecahydro-N-ethylcarbazole
KW - Liquid organic hydrogen carrier
KW - Spin polarization
UR - https://www.scopus.com/pages/publications/105017224537
U2 - 10.1016/j.ces.2025.122684
DO - 10.1016/j.ces.2025.122684
M3 - 文章
AN - SCOPUS:105017224537
SN - 0009-2509
VL - 320
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 122684
ER -