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Unusual double ligand holes as catalytic active sites in LiNiO2.


ABSTRACT: Designing efficient catalyst for the oxygen evolution reaction (OER) is of importance for energy conversion devices. The anionic redox allows formation of O-O bonds and offers higher OER activity than the conventional metal sites. Here, we successfully prepare LiNiO2 with a dominant 3d8L configuration (L is a hole at O 2p) under high oxygen pressure, and achieve a double ligand holes 3d8L2 under OER since one electron removal occurs at O 2p orbitals for NiIII oxides. LiNiO2 exhibits super-efficient OER activity among LiMO2, RMO3 (M = transition metal, R = rare earth) and other unary 3d catalysts. Multiple in situ/operando spectroscopies reveal NiIII→NiIV transition together with Li-removal during OER. Our theory indicates that NiIV (3d8L2) leads to direct O-O coupling between lattice oxygen and *O intermediates accelerating the OER activity. These findings highlight a new way to design the lattice oxygen redox with enough ligand holes created in OER process.

SUBMITTER: Huang H 

PROVIDER: S-EPMC10102180 | biostudies-literature | 2023 Apr

REPOSITORIES: biostudies-literature

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Designing efficient catalyst for the oxygen evolution reaction (OER) is of importance for energy conversion devices. The anionic redox allows formation of O-O bonds and offers higher OER activity than the conventional metal sites. Here, we successfully prepare LiNiO<sub>2</sub> with a dominant 3d<sup>8</sup>L configuration (L is a hole at O 2p) under high oxygen pressure, and achieve a double ligand holes 3d<sup>8</sup>L<sup>2</sup> under OER since one electron removal occurs at O 2p orbitals fo  ...[more]

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