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Acidic and Alkaline pH Controlled Oxygen Reduction Reaction Pathway over Co-N4C Catalyst.
Mahapatra, Bikash K; Barman, Pranjit; Panigrahi, Dipti R; Kochrekar, Sachin; Paul, Bappi; Panghal, Abhishek; Kumar U, Anil; Dhavale, Vishal M; Gupta, Mukul; Kumar, Deepak; Kumar, Vijay; Singh, Santosh K.
Affiliation
  • Mahapatra BK; Department of Chemistry, School of Natural Sciences, Shiv Nadar Institution of Eminence (SNIoE), NH91, Tehsil Dadri, Gautam Buddha Nagar, Greater Noida, Uttar Pradesh, 201314, India.
  • Barman P; Department of Chemistry, School of Natural Sciences, Shiv Nadar Institution of Eminence (SNIoE), NH91, Tehsil Dadri, Gautam Buddha Nagar, Greater Noida, Uttar Pradesh, 201314, India.
  • Panigrahi DR; Department of Chemistry, School of Natural Sciences, Shiv Nadar Institution of Eminence (SNIoE), NH91, Tehsil Dadri, Gautam Buddha Nagar, Greater Noida, Uttar Pradesh, 201314, India.
  • Kochrekar S; Department of Chemistry, Turku University Centre for Materials and Surfaces (MatSurf), University of Turku, Vatselankatu 2, Turku, FI-20014, Finland.
  • Paul B; School of Engineering and Technology, National Forensic Sciences University, Sector-09, Gandhinagar, 382007, India.
  • Panghal A; Department of Physics, School of Natural Sciences, Shiv Nadar Institution of Eminence (SNIoE), Greater Noida, Uttar Pradesh, 201314, India.
  • Kumar U A; CSIR-Central Electrochemical Research Institute, CSIR Madras Complex, Taramani, Chennai, Tamil Nadu, 600 113, India.
  • Dhavale VM; CSIR-Central Electrochemical Research Institute, CSIR Madras Complex, Taramani, Chennai, Tamil Nadu, 600 113, India.
  • Gupta M; UGC-DAE Consortium for Scientific Research, University Campus, Khandwa Road, Indore, 452 001, India.
  • Kumar D; Department of Chemistry, M.S. Ramaiah University of Applied Sciences, Bengaluru, Karnataka, 560054, India.
  • Kumar V; Center for Informatics, School of Natural Sciences, Shiv Nadar Institution of Eminence (SNIoE), NH91, Tehsil Dadri, Gautam Buddha Nagar, Greater Noida, Uttar Pradesh, 201314, India.
  • Singh SK; Dr. Vijay Kumar Foundation, 1969 Sector 4, Gurgaon, Haryana, 122001, India.
Small ; : e2405530, 2024 Sep 23.
Article in En | MEDLINE | ID: mdl-39308440
ABSTRACT
Enhanced oxygen reduction reaction (ORR) kinetics and selectivity are crucial to advance energy technologies like fuel cells and metal-air batteries. Single-atom catalysts (SACs) with M-N4/C structure have been recognized to be highly effective for ORR. However, the lack of a comprehensive understanding of the mechanistic differences in the activity under acidic and alkaline environments is limiting the full potential of the energy devices. Here, a porous SAC is synthesized where a cobalt atom is coordinated with doped nitrogen in a graphene framework (pCo-N4C). The resulting pCo-N4C catalyst demonstrates a direct 4e- ORR process and exhibits kinetics comparable to the state-of-the-art (Pt/C) catalyst. Its higher activity in an acidic electrolyte is attributed to the tuned porosity-induced hydrophobicity. However, the pCo-N4C catalyst displays a difference in ORR activity in 0.1 m HClO4 and 0.1 m KOH, with onset potentials of 0.82 V and 0.91 V versus RHE, respectively. This notable activity difference in acidic and alkaline media is due to the protonation of coordinated nitrogen, restricted proton coupled electron transfer (PCET) at the electrode/electrolyte interface. The effect of pH over the catalytic activity is further verified by Ab-initio molecular dynamics (AIMD) simulations using density functional theory (DFT) calculations.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Small Journal subject: ENGENHARIA BIOMEDICA Year: 2024 Document type: Article Affiliation country: India Country of publication: Germany

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Small Journal subject: ENGENHARIA BIOMEDICA Year: 2024 Document type: Article Affiliation country: India Country of publication: Germany