β-like FeOOH Nanoswords Activated by Ni Foam and Encapsulated by rGO toward High Current Densities, Durability, and Efficient Oxygen Evolution

  • Deshpande, Nishad G.; 
  • Kim, Dong Su; 
  • Ahn, Cheol Hyoun; 
  • Jung, Sung Hyeon; 
  • Kim, Young Been; 
  • ... Lee, Ho Seong; 
  • 외 1명
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초록

As an alternative to the oxygen evolution reaction (OER) electrocatalyst developed by a complex bi- or multimetal ion with layered double hydroxide (LDH) structures, we design a simple, self-supported, and single-metal-ion OER electrocatalyst having lower overpotentials and high current densities in alkaline water electrolyzers. Here, beta-like FeOOH nanosword structures encapsulated by reduced graphene oxide (rGO) were cost-effectively synthesized on formable Ni foam substrates as an efficient and highly durable OER catalyst. It is revealed that the rGO uniformly covered the beta-like FeOOH nanoswords to form a porous network achieving a lower overpotential of only 210 mV at 10 mA cm(-2) with a stable operation for more than 40 h in alkali media. Moreover, a high current density of similar to 300 mA cm(-2) was achieved at less than 1.8 V. In-depth physical and electrochemical analysis indicated that the intrinsic charge transfer through activated Ni-foam, beta-like phase, and nanosword morphology was evidently beneficial for enhancing the OER activity of the bare FeOOH, and its encapsulation by rGO further improved the conductivity and long-life durability. Our integrated OER electrocatalyst developed by a simple method (repeated soaking and quenching process) will aid in scaling up beta-like FeOOH nanoswords for preparing uniform and large-area electrodes for industrial purposes.

키워드

FeOOH; metal oxyhydroxide; nanosword morphology; oxygen evolution reaction; electrocatalyst; LAYERED DOUBLE HYDROXIDE; TRANSITION-METAL OXIDES; REDUCED GRAPHENE OXIDE; ENERGY-CONVERSION; WATER OXIDATION; X-RAY; ELECTROCATALYTIC ACTIVITY; FE-SITES; NICKEL; CATALYST
제목
β-like FeOOH Nanoswords Activated by Ni Foam and Encapsulated by rGO toward High Current Densities, Durability, and Efficient Oxygen Evolution
저자
Deshpande, Nishad G.; Kim, Dong Su; Ahn, Cheol Hyoun; Jung, Sung Hyeon; Kim, Young Been; Lee, Ho Seong; Cho, Hyung Koun
DOI
10.1021/acsami.1c01428
발행일
2021-04-28
유형
Article
저널명
ACS Applied Materials & Interfaces
권
13
호
16
페이지
18772 ~ 18783