High-spin Co3+ in cobalt oxyhydroxide for efficient water oxidation
Высокоспиновый Co3+ в оксигидроксиде кобальта для эффективного окисления воды
2024-02-15
SCID: 54.1/2jeh4esa
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cobalt oxyhydroxidecoordinatively unsaturated Co atomshigh-spin Co3+oxygen evolution reactionwater splitting
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Abstract (AI)
Abstract Cobalt oxyhydroxide (CoOOH) is a promising catalytic material for oxygen evolution reaction (OER). In the traditional CoOOH structure, Co 3+ exhibits a low-spin state configuration ( $${t}_{2{{{{{\rm{g}}}}}}}^{6}{e}_{{{{{{\rm{g}}}}}}}^{0}$$ t 2 g 6 e g 0 ), with electron transfer occurring in face-to-face $${t}_{2{{{{{\rm{g}}}}}}}^{*}$$ t 2 g * orbitals. In this work, we report the successful synthesis of high-spin state Co 3+ CoOOH structure, by introducing coordinatively unsaturated Co atoms. As compared to the low-spin state CoOOH, electron transfer in the high-spin state CoOOH occurs in apex-to-apex $${e}_{{{{{{\rm{g}}}}}}}^{*}$$ e g * orbitals, which exhibits faster electron transfer ability. As a result, the high-spin state CoOOH performs superior OER activity with an overpotential of 226 mV at 10 mA cm −2 , which is 148 mV lower than that of the low-spin state CoOOH. This work emphasizes the effect of the spin state of Co 3+ on OER activity of CoOOH based electrocatalysts for water splitting, and thus provides a new strategy for designing highly efficient electrocatalysts.
Key Findings
1
Coordinatively unsaturated Co atoms enable successful synthesis of a high-spin Co3+ state in cobalt oxyhydroxide (CoOOH).
2
High-spin CoOOH achieves an OER overpotential of 226 mV at 10 mA cm−2, 148 mV lower than low-spin CoOOH.
3
The high-spin electronic configuration provides faster electron-transfer capability than traditional low-spin CoOOH.
4
The results establish Co3+ spin-state engineering as a strategy for improving CoOOH-based electrocatalysts for water splitting.
5
Unlike low-spin CoOOH, high-spin CoOOH enables electron transfer through apex-to-apex eg* orbitals rather than face-to-face t2g* orbitals.
Research Object
high-spin Co3+ cobalt oxyhydroxide (CoOOH) electrocatalyst for the oxygen evolution reaction
Research Subject
the effect of Co3+ spin state and orbital-mediated electron transfer on OER activity and electron-transfer performance
Publication Details
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2024-02-15
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