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Impact of morphology and oxygen vacancy content in Ni, Fe co-doped ceria for efficient electrocatalyst based water splitting.

Abhaya Kumar MishraJoshua WilloughbyShanna L EstesKeliann Cleary KohlerKyle S Brinkman
Published in: Nanoscale advances (2024)
Designing a highly efficient, low-cost, sustainable electrocatalyst for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) through water splitting is a current challenge for renewable energy technologies. This work presents a modified sol-gel route to prepare metal-ion(s) doped cerium oxide nanostructures as an efficient electrocatalyst for overall water splitting. Nickle (Ni) and iron (Fe) co-doping impacts the morphology in cerium oxide resulting in 5 nm nanoparticles with a mesoporous-like microstructure. The high level 20 mol% (1 : 1 ratio) of Ni + Fe bimetal-ion(s) doped CeO 2 shows excellent HER and OER activities compared to the monodoped Fe/Ni and pristine CeO 2 . The co-doped catalysts required a low overpotential of 104 mV and 380 mV for HER and OER, respectively, in 1 M KOH, at a current density of 10 mA cm -2 . The Tafel slopes of 95 mV dec -1 and 65 mV dec -1 were measured for HER and OER with the same representative samples which demonstrated excellent stability even after continuous operation for 20 hours in the alkaline medium. The unique morphology, enhanced oxygen vacancy (O v ) content and the synergistic effects of dopants in CeO 2 play essential roles in enhancing the activities of Ni + Fe doped samples.
Keyphrases
  • metal organic framework
  • highly efficient
  • low cost
  • quantum dots
  • oxide nanoparticles
  • white matter
  • multiple sclerosis
  • transition metal
  • cancer therapy
  • electron transfer