<p>Light-driven methanol synthesis from CO<sub>2</sub> provides a sustainable fuel source and approach to carbon neutralization. Mimicking natural photosynthesis could improve gas-solid photocatalytic efficiency, but it remains highly challenging due to the absence of well-organized mass and charge transfer networks in artificial materials. Herein, we report a chlorophyll-mimicking, nano-pigment nickel gallium oxide, which facilitates discrete light/dark reactions and proton-mediated charge transfer for efficient photocatalytic hydrogenation of CO<sub>2</sub> to methanol. This nano-pigment features surface frustrated Lewis pairs, enabling heterolytic hydrogen splitting into H<sup>-</sup> and H<sup>+</sup>. The H<sup>-</sup> acts analogously to nicotinamide adenine dinucleotide phosphate in natural photosynthesis, with Ni(II)/Ni(III) and OH(-I) respectively serving as conduits for ion transport of H<sup>-</sup> and H<sup>+</sup> to the Ni site, where they subsequently react with CO<sub>2</sub>, mimicking natural carbon fixation. This approach establishes a chlorophyll-mimetic structure for photocatalytic stepwise CO<sub>2</sub> hydrogenation, achieving 3.0% quantum efficiency, 3.20 mmol·h<sup>-1</sup>·g<sup>-1</sup> methanol activity, and 79.6% selectivity.</p>

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A nickel gallium oxide chlorophyll mimic for green methanol synthesis

  • Rui Song,
  • Zhiwen Chen,
  • Chenyue Qiu,
  • Yang-fan Xu,
  • Andrew Wang,
  • Xiaoliang Yan,
  • Yubin Fu,
  • Paul N. Duchesne,
  • Emerson MacNeil,
  • Jigang Zhou,
  • Chaoqian Ai,
  • Jiuli Guo,
  • Chaoran Li,
  • Xingda An,
  • Zhijie Chen,
  • Jiajun Han,
  • Dengwei Jing,
  • Athanasios A. Tountas,
  • Jessica Ye,
  • Guangming Cai,
  • Joel Y. Y. Loh,
  • Abhinav Mohan,
  • Wenqiang Qu,
  • Zhihao Zhu,
  • Camilo J. Viasus,
  • Lu Wang,
  • Chang Xu,
  • Zhao Li,
  • Xiaohong Zhang,
  • Alán Aspuru-Guzik,
  • Chandra Veer Singh,
  • Le He,
  • Geoffrey A. Ozin

摘要

Light-driven methanol synthesis from CO2 provides a sustainable fuel source and approach to carbon neutralization. Mimicking natural photosynthesis could improve gas-solid photocatalytic efficiency, but it remains highly challenging due to the absence of well-organized mass and charge transfer networks in artificial materials. Herein, we report a chlorophyll-mimicking, nano-pigment nickel gallium oxide, which facilitates discrete light/dark reactions and proton-mediated charge transfer for efficient photocatalytic hydrogenation of CO2 to methanol. This nano-pigment features surface frustrated Lewis pairs, enabling heterolytic hydrogen splitting into H- and H+. The H- acts analogously to nicotinamide adenine dinucleotide phosphate in natural photosynthesis, with Ni(II)/Ni(III) and OH(-I) respectively serving as conduits for ion transport of H- and H+ to the Ni site, where they subsequently react with CO2, mimicking natural carbon fixation. This approach establishes a chlorophyll-mimetic structure for photocatalytic stepwise CO2 hydrogenation, achieving 3.0% quantum efficiency, 3.20 mmol·h-1·g-1 methanol activity, and 79.6% selectivity.