4.7 Article

One-step hydrothermal synthesized 3D P-MoO3/FeCo LDH heterostructure electrocatalysts on Ni foam for high-efficiency oxygen evolution electrocatalysis

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 46, Issue 24, Pages 12992-13000

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.01.145

Keywords

FeCo LDH; Ni foam; P doping; Heterostructure; Oxygen evolution reaction

Funding

  1. NSFC [21727810, 21475035, 21235002]
  2. Foundation for Innovative Research Groups of NSFC [21521063]
  3. Hunan Provincial Key RD Program [2018SK2036/2018SK2030]
  4. China Scholarship Council [201606130011]

Ask authors/readers for more resources

A P-doped MoO3/FeCo LDH/NF ultrathin nanosheet heterostructure electrocatalyst with extremely low overpotentials and great durability for OER has been reported, achieving high current density crucial for the water electrolysis industry. The synergetic effect between different components plays an essential role in enhancing the catalytic performances.
Low-cost yet high-efficiency oxygen evolution reaction (OER) catalysts have attracted ardent attention to speed up the development of water electrolysis. Recent researches have shown that layered double hydroxides (LDH) are promising candidates towards OER, but further improvement is still highly demanded for its large-scale practical application in water splitting. Herein, we report a 3D P-doped MoO3/FeCo LDH/NF (P-MoO3/FeCo LDH/NF) ultrathin nanosheet heterostructure electrocatalyst with an extremely low overpotentials of 225 mV for delivering a current density of 10 mA cm(-2) for OER and a great durability for at least 80 h by a simple one-step hydrothermal method. Extraordinarily, the P-MoO3/FeCo LDH catalyst achieves a high current density of 300 mA cm(-2) and even 350 mA cm(-2) at an extremely low overpotential of 297 mV and 302 mV, respectively, which is crucial for the water electrolysis industry. The remarkable performance may be attributed to that the heterostructure between P-MoO3 and FeCo LDH not only optimizes electronic structure, thus inducing electron transfer from P-MoO3 to FeCo LDH and then realizing fast electron transfer rates, but also produces more catalytic active sites. Moreover, the synergetic effect between MoO3 and FeCo LDH also plays an essential role for enhancing the catalytic performances. This work explores the effect of phosphomolybdic acid on the structure, composition and performances of FeCo LDH catalysts, and also provides a simple and cost-effective way to prepare high-efficiency and low-cost layered double hydroxide electrocatalysts for OER. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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