DOE OSTI · 2941122
Electrochemical Behavior of Cerium at an Indium Tin-Doped Oxide Electrode in Acidic Media
Abstract
The redox behavior and speciation of cerium at mesoporous thin films composed of nanoparticles of indium tin-doped oxide (nITO) electrodes were characterized in pH 4.8, 0.1 M acetate buffer and both 0.1 and 1 M HNO 3 using electrochemical techniques and X-ray photoelectron spectroscopy. Anodic deposition of ceria species from Ce(III) to the nITO electrode was achieved under all solvent conditions via spontaneous condensation of electrochemically generated ceric hydroxide species. In 1 M nitric acid, the rate of CeO 2 dissolution is on the same order as CeO 2 deposition, resulting in negligible amounts of CeO 2 electrodeposited at the nITO surface. The cathodic stripping of CeO 2 from the nITO substrate deposited in 0.1 M nitric acid or pH 4.8 acetate buffer follows a 2-step process where Ce(IV)-oxide is initially reduced to an unstable Ce(III)-oxide species that rapidly undergoes acid catalyzed dissolution to yield soluble Ce(III) (aq) . These findings provide a foundation for the pH and anodic potential controlled deposition of CeO 2 thin films to ITO substrates, which can aid in the development of materials composed of ceria. As a result, they can also be used to infer likely analogous actinide redox behavior and speciation at these electrodes.
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McLachlan, Jeffrey R. [Florida International University, Miami, FL (United States); Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States); University of California, Berkeley, CA (United States)], Hou, Xiangyang [Florida International University, Miami, FL (United States); University of Utah, Salt Lake City, UT (United States)], Duque, Mariel Morales [Florida International University, Miami, FL (United States)], Dares, Christopher J. [Florida International University, Miami, FL (United States)] (ORCID:0000000322556619). 2025-12-19. Electrochemical Behavior of Cerium at an Indium Tin-Doped Oxide Electrode in Acidic Media. https://doi.org/10.1021/acselectrochem.5c00337
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