Reconstruction-Determined Alkaline Water Electrolysis At Industrial Temperatures

ADVANCED MATERIALS(2020)

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摘要
Evaluating the alkaline water electrolysis (AWE) at 50-80 degrees C required in industry can veritably promote practical applications. Here, the thermally induced complete reconstruction (TICR) of molybdate oxygen evolution reaction (OER) pre-catalysts at 51.9 degrees C and its fundamental mechanism are uncovered. The dynamic reconstruction processes, the real active species, and stereoscopic structural characteristics are identified by in situ low-/high-temperature Raman, ex situ microscopy, and electron tomography. The completely reconstructed (CR) catalyst (denoted as cat.-51.9) is interconnected by thermodynamically stable (oxy)hydroxide nanoparticles, with abundant boundaries and low crystallinity. For alkaline OER, cat.-51.9 exhibits a low overpotential (282.3 mV at 20 mA cm(-2), 25.0 degrees C) and ultrastable catalysis at 51.9 degrees C (250 h, with a negligible activity decay of 19.6 mu V h(-1)). The experimental observations combined with theoretical analyses confirm the fast catalytic kinetics enabled by the co-effect of boundaries and vacancies. The coupled cat.-51.9 and MoO2-Ni hydrogen-evolving arrays provide stable electrolysis operation at 51.9 degrees C for 220 h. This work uncovers new reconstruction phenomenon of pre-catalysts under realistic conditions and exceptional durability of CR catalysts toward practical high-temperature AWE.
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关键词
alkaline water electrolysis, complete reconstruction, grain, phase boundaries, in situ low-, high-temperature Raman, industrial temperatures, nanowire arrays
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