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Influence of Oxygen Vacancies Introduced via Acceptor (Gadolinium) Doping to the Pseudocapacitive Properties of Nano-Sized Cerium Oxide. | LitMetric

AI Article Synopsis

  • * The research finds that 15% Gd doping increases the specific capacitance of the nanoparticles to 547.8 F/g, which is five times higher than that of undoped cerium oxide (98.7 F/g).
  • * Analysis techniques like X-ray photoemission spectroscopy (XPS) and electrochemical impedance spectroscopy (EIS) indicate that oxygen vacancies at the nanoparticles' surface improve both capacitance and performance, facilitating efficient redox reactions and oxygen ion movement.

Article Abstract

The voluntary introduction of defects can be considered an effective strategy for enhancing the electrochemical properties of metal oxide electrodes. In this study, the enhanced pseudocapacitive properties of an acceptor (Gd) doped cerium oxide nanoparticle-a sustainable metal oxide with low environmental and human toxicity-are investigated in depth using ex situ X-ray photoemission spectroscopy (XPS) and electrochemical impedance spectroscopy (EIS). Interestingly, with 15 at% Gd doping (15GDC), the specific capacitance of the nanoparticles measured at 1 A g enhanced to 547.8 F g, which is fivefold higher than undoped CeO (98.7 F g at 1 A g). The rate-dependent capacitance is also improved for 15GDC, which showed a 31.0% decrease in the specific capacitance upon a tenfold increase in the current density, while CeO showed a 49.9% decrease. The enhanced electrochemical properties are studied in depth via ex situ XPS and EIS analysis, which revealed that the oxygen vacancies at the surface of the nanoparticles played important roles in enhancing both the specific capacitance and the high-rate performance of 15GDC by acting as the active site for pseudocapacitive redox reaction and allowing fast diffusion of oxygen ions at the surface of 15GDC nanoparticles.

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Source
http://dx.doi.org/10.1002/smll.202401925DOI Listing

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