Login / Signup

Sequential Phase Conversion-Induced Phosphides Heteronanorod Arrays for Superior Hydrogen Evolution Performance to Pt in Wide pH Media.

Hongyuan YangPeifang GuoRuirui WangZiliang ChenHongbin XuHongge PanDalin SunFang FangRenbing Wu
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Developing an efficient and non-precious pH-universal hydrogen evolution reaction electrocatalyst is highly desirable for hydrogen production by electrochemical water splitting but remains a significant challenge. Herein, a hierarchical structure composed of heterostructured Ni 2 P-Ni 12 P 5 nanorod arrays rooted on Ni 3 S 2 film (Ni 2 P-Ni 12 P 5 @Ni 3 S 2 ) via a simultaneous corrosion and sulfidation is built followed by a phosphidation treatment toward the metallic nickel foam. The combination of theoretical calculations with in/ex situ characterizations unveils that such a unique sequential phase conversion strategy ensures the strong interfacial coupling between Ni 2 P and Ni 12 P 5 as well as the robust stabilization of 1D heteronanorod arrays by Ni 3 S 2 film, resulting in the promoted water adsorption/dissociation energy, the optimized hydrogen adsorption energy, and the enhanced electron/proton transfer ability accompanied with an excellent stability. Consequently, Ni 2 P-Ni 12 P 5 @Ni 3 S 2 /NF requires only 32, 46, and 34 mV overpotentials to drive 10 mA cm -2 in 1.0 m KOH, 0.5 m H 2 SO 4 , and 1.0 m phosphate-buffered saline electrolytes, respectively, exceeding almost all the previously reported non-noble metal-based electrocatalysts. This work may pave a new avenue for the rational design of non-precious electrocatalysts toward pH-universal hydrogen evolution catalysis.
Keyphrases
  • metal organic framework
  • transition metal
  • electron transfer
  • molecular dynamics
  • reduced graphene oxide
  • immune response
  • high resolution
  • replacement therapy
  • pi k akt