News News
Contact us
  • Customer service number:64321087
  • Commercial service telephone:13918059423
  • Technical service telephone:13918059423
  • Contact person: Mr. Cui 
  • Service email:shxtb@163.com
  • Address: room 107, building 8, no. 100, guilin road, xuhui district, Shanghai

Magnetic-Field-Enhanced Oxygen Evolution in Yttrium-Doped CoFe2O4 Langmuir–Blodgett Nanofilms

The date of: 2026-03-12
viewed: 4

来源:ACS Publications

Pure cobalt ferrite (CoFe2O4) and yttrium-doped cobalt ferrite (CoY0.2Fe1.8O4) nanofilms were fabricated using nanoparticles synthesized via a self-combustion route and assembled through the Langmuir–Blodgett (LB) technique. These nanostructured films were employed as anodes to investigate the effects of Y3+ incorporation in the structure and the application of an external magnetic field on the oxygen evolution reaction (OER). Transmission electron microscopy and X-ray diffraction confirmed a reduction in particle and crystallite size upon Y doping, while X-ray photoelectron spectroscopy evidenced Y3+ incorporation and partial cation redistribution within the spinel lattice. Magnetic measurements indicated ferrimagnetic behavior for both materials, with Y substitution decreasing the saturation magnetization and increasing the coercivity. The LB nanofilms exhibited homogeneous coverage and pronounced in-plane magnetic anisotropy, and were used as anodes for the OER in alkaline media. Y3+ doping significantly improved the OER activity by reducing the overpotential and charge-transfer resistance, whereas the application of a magnetic field further amplified the catalytic response (particularly under in-plane orientation) through the combined effects of spin polarization and Lorentz-force-induced magnetohydrodynamic convection. Remarkably, the magneto-enhancement observed in pure CoFe2O4 nanofilms was comparable to that achieved through Y doping, underscoring the potential of magnetic-field-assisted catalysis as a sustainable strategy to minimize reliance on rare-earth elements while maintaining high OER efficiency. Both electrodes maintained stable activity over prolonged cycling, confirming their structural and electrochemical robustness. This study highlights the dual role of rare-earth doping and magnetic-field effects in tailoring the spin, structural, and electronic properties of spinel ferrite nanofilms for next-generation energy conversion applications.


Hot News / Related to recommend
  • 2026 - 04 - 09
    Click on the number of times: 1
    来源:ACS PublicationsCuprous oxide semiconductors have been growing in research interest because of their promising optical and catalytic properties for solar energy conversion. While much recent resear...
  • 2026 - 04 - 08
    Click on the number of times: 2
    来源:ACS PublicationsWe propose to probe the d–f exchange interaction by measuring the response of the itinerant states to an external magnetic field. Two rare-earth monotellurides, TmTe and GdTe, are c...
  • 2026 - 04 - 07
    Click on the number of times: 2
    来源:ACS PublicationsThe electrochemical production of hydrogen peroxide (H2O2) through the two-electron oxygen reduction reaction (2e– ORR) is a sustainable and practical approach that enables efficien...
  • 2026 - 04 - 07
    Click on the number of times: 1
    来源:ACS PublicationsCerium copper oxytelluride (CCOT) and lanthanum copper oxytelluride (LCOT) nanomaterials have been synthesized through a straightforward hydrothermal route to explore their potentia...
  • Copyright ©Copyright 2018 2020 Shanghai rare earth association All Rights Reserved Shanghai ICP NO.2020034223
    the host:Shanghai Association of Rare Earth the guide:Shanghai Development and Application Office of Rare Earth the organizer:Shanghai rare earth industry promotion center
    犀牛云提供云计算服务