Phosphorus-Rich Metal Phosphides: Direct and Tin Flux-Assisted Synthesis and Evaluation as Hydrogen Evolution Electrocatalysts

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Abstract

Metal phosphides from the 3d period exhibit a range of structures and compositions. Many metal-rich phosphides and monophosphides function as heterogeneous electrocatalysts in the hydrogen evolution reaction. This paper describes the direct and tin flux-assisted synthesis of phosphorus-rich metal phosphides with MP 2 or MP 3 compositions. The facile synthesis of FeP 2 , CoP 3 , NiP 2 , and CuP 2 is thermochemically driven by PCl 3 formation from reactions of anhydrous metal halides and P 4 vapor at 500 °C. Well-crystallized micrometer-sized particles result from these solvent-free reactions. A tin flux leads to more complete reactions at lower temperature for FeP 2 and enables synthesis of a monoclinic polymorph of NiP 2 rather than the kinetic cubic product formed by direct reaction. These crystalline metal phosphides are investigated as electrocatalyts for hydrogen evolution in acidic and buffered aqueous solutions. All phosphorus-rich products show very good stability in strongly acidic media. The catalytic activity for hydrogen evolution ordered by higher current at a fixed electrode geometric area and low onset potential is CoP 3 > NiP 2 (cubic and monoclinic) > FeP 2 CuP 2 . At high applied potentials, CuP 2 undergoes surface reactions and roughening that improve its electrocatalytic activity. Correlations of the observed electrocatalytic activity with electrochemically active surface area, particle size, metallic versus semiconducting properties, and local metal coordination environment are noted for these phosphorus-rich 3d metal phosphides.

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Coleman, N., Lovander, M. D., Leddy, J., & Gillan, E. G. (2019). Phosphorus-Rich Metal Phosphides: Direct and Tin Flux-Assisted Synthesis and Evaluation as Hydrogen Evolution Electrocatalysts. Inorganic Chemistry, 58(8), 5013–5024. https://doi.org/10.1021/acs.inorgchem.9b00032

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