4.6 Article

Stainless Steel as A Bi-Functional Electrocatalyst-A Top-Down Approach

Journal

MATERIALS
Volume 12, Issue 13, Pages -

Publisher

MDPI
DOI: 10.3390/ma12132128

Keywords

water splitting; electrolysis; bifunctional; electrocatalysts; hydrogen evolution reaction; oxygen evolution reaction; sustainable; stainless steel; nano

Funding

  1. Energimyndigheten [45419-1]
  2. Vetenskapsradet [2017-04862]
  3. Vinnova [2017-04862] Funding Source: Vinnova
  4. Swedish Research Council [2017-04862] Funding Source: Swedish Research Council

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For a hydrogen economy to be viable, clean and economical hydrogen production methods are vital. Electrolysis of water is a promising hydrogen production technique with zero emissions, but suffer from relatively high production costs. In order to make electrolysis of water sustainable, abundant, and efficient materials has to replace expensive and scarce noble metals as electrocatalysts in the reaction cells. Herein, we study activated stainless steel as a bi-functional electrocatalyst for the full water splitting reaction by taking advantage of nickel and iron suppressed within the bulk. The final electrocatalyst consists of a stainless steel mesh with a modified surface of layered NiFe nanosheets. By using a top down approach, the nanosheets stay well anchored to the surface and maintain an excellent electrical connection to the bulk structure. At ambient temperature, the activated stainless steel electrodes produce 10 mA/cm(2) at a cell voltage of 1.78 V and display an onset for water splitting at 1.68 V in 1M KOH, which is close to benchmarking nanosized catalysts. Furthermore, we use a scalable activation method using no externally added electrocatalyst, which could be a practical and cheap alternative to traditionally catalyst-coated electrodes.

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