Spectroscopic capture of a low-spin Mn(IV)-oxo species in Ni-Mn<sub>3</sub>O<sub>4</sub> nanoparticles during water oxidation catalysis.

Park, Sunghak; Jin, Kyoungsuk; Lim, Hyung Kyu; Kim, Jin; Cho, Kang Hee; Choi, Seungwoo; Seo, Hongmin; Lee, Moo Young et al. · Nat Commun · 2020

basic_science · Level V

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Abstract

High-valent metal-oxo moieties have been implicated as key intermediates preceding various oxidation processes. The critical O-O bond formation step in the Kok cycle that is presumed to generate molecular oxygen occurs through the high-valent Mn-oxo species of the water oxidation complex, i.e., the Mn<sub>4</sub>Ca cluster in photosystem II. Here, we report the spectroscopic characterization of new intermediates during the water oxidation reaction of manganese-based heterogeneous catalysts and assign them as low-spin Mn(IV)-oxo species. Recently, the effects of the spin state in transition metal catalysts on catalytic reactivity have been intensely studied; however, no detailed characterization of a low-spin Mn(IV)-oxo intermediate species currently exists. We demonstrate that a low-spin configuration of Mn(IV), S = 1/2, is stably present in a heterogeneous electrocatalyst of Ni-doped monodisperse 10-nm Mn<sub>3</sub>O<sub>4</sub> nanoparticles via oxo-ligand field engineering. An unprecedented signal (g = 1.83) is found to evolve in the electron paramagnetic resonance spectrum during the stepwise transition from the Jahn-Teller-distorted Mn(III). In-situ Raman analysis directly provides the evidence for Mn(IV)-oxo species as the active intermediate species. Computational analysis confirmed that the substituted nickel species induces the formation of a z-axis-compressed octahedral C<sub>4v</sub> crystal field that stabilizes the low-spin Mn(IV)-oxo intermediates.