AI Article Synopsis

  • The study explores a new solventless method for creating solid solutions of NiCoFeO, which offers an eco-friendly and cost-effective alternative to traditional wet chemical routes used for synthesizing spinel ferrites.
  • Characterization techniques like p-XRD, SEM, and UV-Vis were employed to analyze the properties of the synthesized nanoscopic materials, revealing their potential in energy applications.
  • The NiCoFeO solid solution demonstrated exceptional electrochemical performance, including a high specific capacitance of 237 F g for supercapacitors and low overpotentials for hydrogen and oxygen evolution reactions, indicating its suitability for energy storage and generation.

Article Abstract

The formation of solid solutions represents a robust strategy for modulating the electronic properties and improving the electrochemical performance of spinel ferrites. However, solid solutions have been predominantly prepared wet chemical routes, which involve the use of harmful and/or expensive chemicals. In the present study, a facile, inexpensive and environmentally benign solventless route is employed for the composition-controlled synthesis of nanoscopic Ni Co FeO (0 ≤ ≤ 1) solid solutions. The physicochemical characterization of the samples was performed by p-XRD, SEM, EDX, XPS, TEM, HRTEM and UV-Vis techniques. A systematic investigation was also carried out to elucidate the electrochemical performance of the prepared nanospinels towards energy generation and storage. Based on the results of CV, GCD, and stability tests, the NiCoFeO electrode showed the highest performance for the supercapacitor electrode exhibiting a specific capacitance of 237 F g, superior energy density of 10.3 W h kg and a high power density with a peak value of 4208 W kg, and 100% of its charge storage capacity was retained after 4000 cycles with 97% coulombic efficiency. For HER, the NiCoFeO and CoFeO electrodes showed low overpotentials of 168 and 169 mV, respectively, indicating better catalytic activity. For OER, the NiCoFeO electrode exhibited a lower overpotential of 320 mV at a current density of 10 mA cm, with a Tafel slope of 79 mV dec, demonstrating a fast and efficient process. These results indicated that nanospinel ferrite solid solutions could be employed as promising electrode materials for supercapacitor and water splitting applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9041409PMC
http://dx.doi.org/10.1039/d1ra04833cDOI Listing

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