Zulqarnain Muhammad, Shah Afzal, Khan Muhammad Abdullah, Jan Iftikhar Faiza, Nisar Jan
Department of Chemistry Quaid-i-Azam University, 45320, Islamabad, Pakistan.
Department of Chemistry, College of Science, University of Bahrain, Sakhir, 32038, Kingdom of Bahrain.
Sci Rep. 2020 Apr 14;10(1):6328. doi: 10.1038/s41598-020-63319-7.
To investigate cost affordable and robust HER and OER catalysts with significant low overpotentials, we have successfully embedded FeCoSe spheres on smooth surfaces of graphitic carbon nitride that demonstrated high stability and electrocatalytic activity for H production. We systematically analyzed the composition and morphology of FeCoSe/g-CN and attributed the remarkable electrochemical performance of the catalyst to its unique structure. FeCoSe/g-CN showed a superior HER activity, with quite low overpotential value (83 mV at -20 mA cm in 0.5 M HSO) and a current density of -3.24, -7.84, -14.80, -30.12 mA cm at 0 V (vs RHE) in Dulbecco's Phosphate-Buffered Saline (DPBS), artificial sea water (ASW), 0.5 M HSO and 1 M KOH, respectively. To the best of our knowledge, these are the highest reported current densities at this low potential value, showing intrinsic catalytic activity of the synthesized material. Also, the catalyst was found to deliver a high and stable current density of -1000 mA cm at an overpotential of just 317 mV. Moreover, the synthesized catalyst delivered a constant current density of -30 mA cm for 24 h without any noticeable change in potential at -0.2 V. These attributes confer our synthesized catalyst to be used for renewable fuel production and applications.
为了研究具有显著低过电位的经济实惠且稳定的析氢反应(HER)和析氧反应(OER)催化剂,我们已成功地将FeCoSe球嵌入石墨相氮化碳的光滑表面,该材料对析氢反应表现出高稳定性和电催化活性。我们系统地分析了FeCoSe/g-CN的组成和形态,并将该催化剂卓越的电化学性能归因于其独特的结构。FeCoSe/g-CN表现出优异的析氢活性,在0.5 M H₂SO₄中,-20 mA cm⁻²时过电位相当低(83 mV),在杜氏磷酸盐缓冲盐水(DPBS)、人工海水(ASW)、0.5 M H₂SO₄和1 M KOH中,0 V(相对于可逆氢电极,RHE)时的电流密度分别为-3.24、-7.84、-14.80、-30.12 mA cm⁻²。据我们所知,这些是在该低电位值下报道的最高电流密度,表明合成材料具有内在催化活性。此外,发现该催化剂在仅317 mV的过电位下可提供-1000 mA cm⁻²的高且稳定的电流密度。而且,合成的催化剂在-0.2 V下可提供-30 mA cm⁻²的恒定电流密度达24小时,电位无任何明显变化。这些特性使我们合成的催化剂可用于可再生燃料生产及应用。