Ultrafast Electrical Pulse Synthesis of Highly Active Electrocatalysts for Beyond-Industrial-Level Hydrogen Gas Batteries.
basic_science · Level V
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- Record sourced from PubMed, PMID 37249173.
- Also identified by DOI 10.1002/adma.202300502.
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Abstract
The high reliability and proven ultra-longevity make aqueous hydrogen gas (H<sub>2</sub> ) batteries ideal for large-scale energy storage. However, the low alkaline hydrogen evolution and oxidation reaction (HER/HOR) activities of expensive platinum catalysts severely hamper their widespread applications in H<sub>2</sub> batteries. Here, cost-effective, highly active electrocatalysts, with a model of ruthenium-nickel alloy nanoparticles in ≈3 nm anchored on carbon black (RuNi/C) as an example, are developed by an ultrafast electrical pulse approach for nickel-hydrogen gas (NiH<sub>2</sub> ) batteries. Having a competitive low cost of about one fifth of Pt/C benckmark, this ultrafine RuNi/C catalyst displays an ultrahigh HOR mass activity of 2.34 A mg<sup>-1</sup> at 50 mV (vs RHE) and an ultralow HER overpotential of 19.5 mV at a current density of 10 mA cm<sup>-2</sup> . As a result, the advanced NiH<sub>2</sub> battery can efficiently operate under all-climate conditions (from -25 to +50 °C) with excellent durability. Notably, the NiH<sub>2</sub> cell stack achieves an energy density up to 183 Wh kg<sup>-1</sup> and an estimated cost of ≈49 $ kWh<sup>-1</sup> under an ultrahigh cathode Ni(OH)<sub>2</sub> loading of 280 mg cm<sup>-2</sup> and a low anode Ru loading of ≈62.5 µg cm<sup>-2</sup> . The advanced beyond-industrial-level hydrogen gas batteries provide great opportunities for practical grid-scale energy storage applications.