Composition Engineering of Amorphous Nickel Boride Nanoarchitectures Enabling Highly Efficient Electrosynthesis of Hydrogen Peroxide.
basic_science · Level V
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- Record sourced from PubMed, PMID 35736517.
- Also identified by DOI 10.1002/adma.202202995.
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Abstract
Developing advanced electrocatalysts with exceptional two electron (2e<sup>-</sup> ) selectivity, activity, and stability is crucial for driving the oxygen reduction reaction (ORR) to produce hydrogen peroxide (H<sub>2</sub> O<sub>2</sub> ). Herein, a composition engineering strategy is proposed to flexibly regulate the intrinsic activity of amorphous nickel boride nanoarchitectures for efficient 2e<sup>-</sup> ORR by oriented reduction of Ni<sup>2+</sup> with different amounts of BH<sub>4</sub> <sup>-</sup> . Among borides, the amorphous NiB<sub>2</sub> delivers the 2e<sup>-</sup> selectivity close to 99% at 0.4 V and over 93% in a wide potential range, together with a negligible activity decay under prolonged time. Notably, an ultrahigh H<sub>2</sub> O<sub>2</sub> production rate of 4.753 mol g<sub>cat</sub> <sup>-1</sup> h<sup>-1</sup> is achieved upon assembling NiB<sub>2</sub> in the practical gas diffusion electrode. The combination of X-ray absorption and in situ Raman spectroscopy, as well as transient photovoltage measurements with density functional theory, unequivocally reveal that the atomic ratio between Ni and B induces the local electronic structure diversity, allowing optimization of the adsorption energy of Ni toward *OOH and reducing of the interfacial charge-transfer kinetics to preserve the OO bond.