4.7 Article

Mild construction of an Fe-B-O based flexible electrode toward highly efficient alkaline simulated seawater splitting

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 634, Issue -, Pages 804-816

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.12.104

Keywords

Earth-abundant FeB x; Electroless plating; Flexibility; Alkaline simulated seawater splitting; Low-cost hydrogen production

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In this study, highly efficient, flexible, robust, and scalable self-supporting electrodes based on earth-abundant iron borides were successfully fabricated for grid-scale hydrogen production. The electrodes showed low overpotentials and Tafel slope values, and maintained high catalytic activity over a long period of time. Furthermore, the electrodes had a low cost and exhibited excellent hydrogen production performance.
It is essential to construct self-supporting electrodes based on earth-abundant iron borides in a mild and economical manner for grid-scale hydrogen production. Herein, a series of highly efficient, flexible, robust, and scalable Fe-B-O@FeBx modified on hydrophilic cloth (denoted as Fe-B-O@FeBx/HC, 10 cm x 10 cm) are fabricated by mild electroless plating. The overpotentials and Tafel slope values for the hydrogen and oxygen evolution reactions are 59 mV and 57.62 mV dec-1 and 181 mV and 65.44 mV dec-1, respectively; only 1.462 V is required to achieve 10 mA cm-2 during overall water split-ting (OWS). Fe-B-O@FeBx/HC maintains its high catalytic activity for more than 7 days at an industrial current density (400 mA cm-2), owing to the loosened popcorn-like Fe-B-O@FeBx that is firmly loaded on a 2D-layered and mechanically robust substrate along with its fast charge and mass transfer kinetics. The chimney effect of core-shell borides@(oxyhydro)oxides enhances the OWS performance and protects the inner metal borides from further corrosion. Moreover, the flexible Fe-B-O@FeBx/HC electrode has a low cost for grid-scale hydrogen production ($2.97 kg-1). The proposed strategy lays a solid foundation for universal preparation, large-scale hydrogen production and practical applications thereof.(c) 2022 Published by Elsevier Inc.

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