TY - JOUR
T1 - Local electronic modulation by single-atom Cu for CO2 hydrogenation to light olefins
AU - Zhang, Lizhi
AU - Liu, Wenming
AU - Li, Guobo
AU - Ji, Jian
AU - Ye, Liang
AU - Liu, Yupeng
AU - Wang, Wei
AU - Wu, Peng
AU - Peng, Honggen
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/5
Y1 - 2026/5
N2 - Despite significant progress in bifunctional catalysts for CO2 hydrogenation, simultaneously achieving high CO2 conversion and excellent light olefins selectivity remains challenging due to the unclear role of H2 activation pathways. Herein, we establish a local electronic modulation strategy that enables precise control of H2 activation by constructing isolated Cu–O–Zr interfacial sites within ZnZrOx. The introduction of single-atom Cu serves as an atomic-level model to realize this modulation, where the Cu–O–Zr interface reduces the H2 dissociation barrier to 0.85 eV and promotes methanol-mediated olefin formation while suppressing side reactions. When integrated with SAPO-34, the Cu single-atoms (SAs) doped ZnZrOx catalyst achieves a 50 % increase in light olefins yield compared to its Cu-free counterpart, effectively overcoming the conventional activity–selectivity trade-off. Combined DFT and in situ spectroscopic analyses reveal that the moderate hydrogenation capability of CuSAs–H intermediates selectively channels reaction pathways toward olefins production, in sharp contrast to the overactive Cu–H species derived from metallic Cu0 nanoparticles (Cu NPs). This work establishes local electronic modulation as a powerful and generalizable strategy to tune hydrogen activation at the atomic level, offering mechanistic insights into selective CO2 hydrogenation and beyond.
AB - Despite significant progress in bifunctional catalysts for CO2 hydrogenation, simultaneously achieving high CO2 conversion and excellent light olefins selectivity remains challenging due to the unclear role of H2 activation pathways. Herein, we establish a local electronic modulation strategy that enables precise control of H2 activation by constructing isolated Cu–O–Zr interfacial sites within ZnZrOx. The introduction of single-atom Cu serves as an atomic-level model to realize this modulation, where the Cu–O–Zr interface reduces the H2 dissociation barrier to 0.85 eV and promotes methanol-mediated olefin formation while suppressing side reactions. When integrated with SAPO-34, the Cu single-atoms (SAs) doped ZnZrOx catalyst achieves a 50 % increase in light olefins yield compared to its Cu-free counterpart, effectively overcoming the conventional activity–selectivity trade-off. Combined DFT and in situ spectroscopic analyses reveal that the moderate hydrogenation capability of CuSAs–H intermediates selectively channels reaction pathways toward olefins production, in sharp contrast to the overactive Cu–H species derived from metallic Cu0 nanoparticles (Cu NPs). This work establishes local electronic modulation as a powerful and generalizable strategy to tune hydrogen activation at the atomic level, offering mechanistic insights into selective CO2 hydrogenation and beyond.
KW - CO hydrogenation
KW - Cu single atoms
KW - Local electronic modulation
KW - Selective H activation
UR - https://www.scopus.com/pages/publications/105022303311
U2 - 10.1016/j.apcatb.2025.126212
DO - 10.1016/j.apcatb.2025.126212
M3 - 文章
AN - SCOPUS:105022303311
SN - 0926-3373
VL - 384
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 126212
ER -