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◆ Journal of the American Chemical Society2026-03-18· Chemistry

Low-Spin State Single-Atom Ni Catalyst for Electrochemical Carbon Dioxide Reduction at Ampere-Level Current

Yafei Sun, Mengzhe Wang, Chun Pei, Xiaojuan Zhu, Ziguang Zhao, Hao Sun, Guohua Yao, Ying Wan

原始摘要(英文原文)· Original abstract
Developing earth-abundant, selective, and low-overpotential electrocatalysts for the reduction of carbon dioxide represents a novel paradigm for a sustainable carbon economy. Here, we present advances in the understanding of trends in the reduction of CO 2 to CO of Ni single-atom catalysts (SACs) supported by ordered mesoporous carbon (OMC). Characterizations using X-ray absorption spectroscopy (XAS), temperature-dependent magnetic susceptibility ( M - T ), and density functional theory (DFT) calculations show that the spin-state transitions from high-spin (HS) to low-spin (LS) for Ni SACs are induced by an asymmetric trigonal bipyramidal NiN 2 O 3 configuration. Combined with surface-enhanced infrared absorption spectroscopy in the attenuated total reflection mode (ATR-SEIRAS), kinetic isotope effect (KIE), and density functional theory calculations, the rate-determining step is demonstrated to be the formation of *COOH. The unique NiN 2 O 3 structure with a low-spin state significantly enhances the adsorption of *COOH due to the formation of stable Ni–C bonds and intermolecular hydrogen bonding. In electrocatalytic CO 2 reduction to CO, the low-spin Ni SAC achieved an industrial-level performance, with a current density toward the CO product ( J CO ) up to 1 A cm –2, a turnover frequency (TOF) of 107,200 h –1 at ∼99% Faradaic efficiency (FE), and a half-reaction energy efficiency of 66%. This study establishes an electronic structure mechanistic framework for CO production from M-N/O x moieties, thereby providing guidelines for the design of CO 2 reduction catalysts.
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