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Elucidating the effects of nitrogen and phosphorus co-doped carbon on complex spinel NiFe2O4 towards oxygen reduction reaction in alkaline media.
Mbokazi, Siyabonga Patrick; Matthews, Thabo; Zheng, Haitao; Chabalala, Makhaokane Paulina; Zikhali, Memory; Mugadza, Kudzai; Gwebu, Sandile; Mekuto, Lukhanyo; Maxakato, Nobanathi Wendy.
Affiliation
  • Mbokazi SP; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Matthews T; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Zheng H; Energy Centre, Council for Scientific and Industrial Research (CSIR), Pretoria, 0001, South Africa.
  • Chabalala MP; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Zikhali M; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Mugadza K; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Gwebu S; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
  • Mekuto L; Department of Chemical Engineering, School of Mining, Metallurgy, and Chemical Engineering, Faculty of Engineering and the Built Environment, University of Johannesburg, Doornfontein, 2006, South Africa.
  • Maxakato NW; Department of Chemical Sciences, University of Johannesburg, Doornfontein, 2028, South Africa.
Heliyon ; 10(15): e35483, 2024 Aug 15.
Article in En | MEDLINE | ID: mdl-39166028
ABSTRACT
The study presents for the first time complex spinel NiFe2O4 nanoparticles supported on nitrogen and phosphorus co-doped carbon nanosheets (NPCNS) prepared using sol gel and the carbonization of graphitic carbon nitride with lecithin as a highly active and durable electrocatalyst for oxygen reduction reaction. The physicochemical properties of complex spinel NiFe2O4 on NPCNS and subsequent nanomaterials were investigated using techniques such as X-ray diffraction, Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and transmission electron microscopy. The electrochemical activity of the electrocatalysts was evaluated using hydrodynamic linear sweep voltammetry, cyclic voltammetry, electrochemical impedance spectroscopy, and chronoamperometry. The electrocatalytic performance of the NiFe2O4/NPCNS nanohybrid electrocatalyst is dominated by the 4e- transfer mechanism, with an onset potential of 0.92 V vs. RHE, which is closer to that of the Pt/C, and a current density of 7.81 mA/cm2 that far exceeds that of the Pt/C. The nanohybrid demonstrated the best stability after 14 400 s, outstanding durability after 521 cycles, and the best ability to oxidize methanol and remove CO from its active sites during CO tolerance studies. This improved catalytic activity can be attributed to small nanoparticle sizes of the unique complex spinel nickel ferrite structure, N-Fe/Ni coordination of nanocomposite, high dispersion, substantial ECSA of 47.03 mF/cm2, and synergy caused by strong metal-support and electronic coupling interactions.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Heliyon Year: 2024 Document type: Article Affiliation country: South Africa Country of publication: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Heliyon Year: 2024 Document type: Article Affiliation country: South Africa Country of publication: United kingdom