Ultrafast Preparation of Nonequilibrium FeNi Spinels by Magnetic Induction Heating for Unprecedented Oxygen Evolution Electrocatalysis

Carbon-supported nanocomposites are attracting particular attention as high-performance, low-cost electrocatalysts for electrochemical water splitting. These are mostly prepared by pyrolysis and hydrothermal procedures that are time-consuming (from hours to days) and typically difficult to produce a...

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Veröffentlicht in:Research (Washington) 2022, Vol.2022, p.9756983-9756983
Hauptverfasser: Lu, Bingzhang, Liu, Qiming, Wang, Chunyang, Masood, Zaheer, Morris, David J, Nichols, Forrest, Mercado, Rene, Zhang, Peng, Ge, Qingfeng, Xin, Huolin L, Chen, Shaowei
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Sprache:eng
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Zusammenfassung:Carbon-supported nanocomposites are attracting particular attention as high-performance, low-cost electrocatalysts for electrochemical water splitting. These are mostly prepared by pyrolysis and hydrothermal procedures that are time-consuming (from hours to days) and typically difficult to produce a nonequilibrium phase. Herein, for the first time ever, we exploit magnetic induction heating-quenching for ultrafast production of carbon-FeNi spinel oxide nanocomposites (within seconds), which exhibit an unprecedentedly high performance towards oxygen evolution reaction (OER), with an ultralow overpotential of only +260 mV to reach the high current density of 100 mA cm . Experimental and theoretical studies show that the rapid heating and quenching process (ca. 10 K s ) impedes the Ni and Fe phase segregation and produces a Cl-rich surface, both contributing to the remarkable catalytic activity. Results from this study highlight the unique advantage of ultrafast heating/quenching in the structural engineering of functional nanocomposites to achieve high electrocatalytic performance towards important electrochemical reactions.
ISSN:2639-5274
2639-5274
DOI:10.34133/2022/9756983