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Efficient catalytic reduction of CO 2 is critical for the large-scale utilization of this greenhouse gas. We have used density functional electronic structure methods to design a catalyst for producing formic acid from CO 2 and H 2 via a two-step pathway having low reaction barriers. The catalyst consists of a microporous metal organic framework that is functionalized with Lewis pair moieties. These functional groups are capable of chemically binding CO 2 and heterolytically dissociating H 2 . Our calculations indicate that the porous framework remains stable after functionalization and chemisorption of CO 2 and H 2 . We have identified a low barrier pathway for simultaneous addition of hydridic and protic hydrogens to carbon and oxygen of CO 2, respectively, producing a physisorbed HCOOH product in the pore. We find that activating H 2 by dissociative adsorption leads to a much lower energy pathway for hydrogenating CO 2 than reacting H 2 with chemisorbed CO 2 . Our calculations provide design strategies for efficient catalysts for CO 2 reduction.
Ye et al. (Wed,) studied this question.