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CuO-NiO binary transition metal oxide nanoparticle anchored on rGO nanosheets as high-performance electrocatalyst for the oxygen reduction reaction.
Sandhiran, Nagarani; Ganapathy, Sasikala; Manoharan, Yuvaraj; Ganguly, Dipsikha; Kumar, Mohanraj; Ramanujam, Kothandaraman; Balachandran, Subramanian.
Affiliation
  • Sandhiran N; Crystal Growth Centre, Anna University, Chennai, 600 025, India; Center for Nanoscience and Technology, Chennai Institute of Technology, Chennai, Tamil Nadu, 600 069, India. Electronic address: nagaranis@citchennai.net.
  • Ganapathy S; Crystal Growth Centre, Anna University, Chennai, 600 025, India. Electronic address: sasikalaganapathycgc@gmail.com.
  • Manoharan Y; Department of Biochemistry, SRM Arts & Science College, Kattankulathur, Chengalpettu-603 203, India. Electronic address: rajmyuvaraj@gmail.com.
  • Ganguly D; Nano Functional Materials Technology Centre (NFMTC), Indian Institute of Technology Madras, Chennai, 600 036, India. Electronic address: dips.ganguly91@gmail.com.
  • Kumar M; Department of Environmental Engineering and Management, Chaoyang University of Technology, Taichung City, 413 310, Taiwan.
  • Ramanujam K; Department of Chemistry, Indian Institute of Technology Madras, Chennai, 600 036, India. Electronic address: rkraman@iitm.ac.in.
  • Balachandran S; Center for Nanoscience and Technology, Chennai Institute of Technology, Chennai, Tamil Nadu, 600 069, India. Electronic address: balachem13@gmail.com.
Environ Res ; 211: 112992, 2022 Aug.
Article in En | MEDLINE | ID: mdl-35231454
To replace the existing noble-metal-based catalysts, developing highly efficient, stable electrocatalysts for oxygen reduction reactions for the increased current generation with lower overpotential is a demanding undertaking. In the present work, CuO-NiO/rGO nanocomposites were prepared using simple, cost-effective Co-precipitation methods. They act as highly effective electrocatalysts for oxygen reduction reactions in an alkaline medium. The structural characterizations demonstrate that prepared nanoparticles (≈13 nm) are tightly and effectively organized on reduced graphene oxide sheets. The electrochemical properties of the CuO, NiO nanoparticles and CuO-NiO, CuO-NiO/rGO nanocomposites were investigated. The results of the CuO-NiO/rGO nanocomposites revealed the high current density (2.9 × 10-4 mA cm-2), lower Tafel slope (72 mV dec-1) and low hydrogen peroxide yield (15%) when compared to other prepared materials (CuO, NiO, and CuO-NiO). The reduced graphene oxide increases an electron transfer during the ORR process, while the CuO-NiO has variable oxidation states that promote electro-rich features. With the combination of CuO-NiO and rGO, the hybrid electrocatalysts specific surface area and charge transfer rate drastically increase. The investigations of the rotating ring-disk electrodes experiments indicate that the oxygen reduction process takes place on CuO-NiO/rGO through an efficient four-electron pathway. Our results propose a new approach to creating highly efficient and long-lasting electrocatalysts.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Environ Res Year: 2022 Document type: Article Country of publication: Netherlands

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Environ Res Year: 2022 Document type: Article Country of publication: Netherlands