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The Oxygen Evolution Reaction Drives Passivity Breakdown for Ni-Cr-Mo Alloys.
Larsson, Alfred; Grespi, Andrea; Abbondanza, Giuseppe; Eidhagen, Josefin; Gajdek, Dorotea; Simonov, Konstantin; Yue, Xiaoqi; Lienert, Ulrich; Hegedüs, Zoltan; Jeromin, Arno; Keller, Thomas F; Scardamaglia, Mattia; Shavorskiy, Andrey; Merte, Lindsay R; Pan, Jinshan; Lundgren, Edvin.
Afiliação
  • Larsson A; Lund University, Division of Synchrotron Radiation Research, Lund, 221 00, Sweden.
  • Grespi A; Lund University, Division of Synchrotron Radiation Research, Lund, 221 00, Sweden.
  • Abbondanza G; Lund University, Division of Synchrotron Radiation Research, Lund, 221 00, Sweden.
  • Eidhagen J; KTH Royal Institute of Technology, Division of Surface and Corrosion Science, Stockholm, 100 44, Sweden.
  • Gajdek D; Alleima (former Sandvik Materials Technology), Sandviken, 811 81, Sweden.
  • Simonov K; Malmö University, Materials Science and Applied Mathematics, Malmö, 205 06, Sweden.
  • Yue X; Swerim AB, Department of Materials and Process Development, Kista, 164 07, Sweden.
  • Lienert U; KTH Royal Institute of Technology, Division of Surface and Corrosion Science, Stockholm, 100 44, Sweden.
  • Hegedüs Z; DESY Photon Science, 22607, Hamburg, Germany.
  • Jeromin A; DESY Photon Science, 22607, Hamburg, Germany.
  • Keller TF; Centre for X-ray and Nano Science (CXNS), Deutsches Elektronen-Synchrotron DESY, 22607, Hamburg, Germany.
  • Scardamaglia M; Centre for X-ray and Nano Science (CXNS), Deutsches Elektronen-Synchrotron DESY, 22607, Hamburg, Germany.
  • Shavorskiy A; Department of Physics, University of Hamburg, 22607, Hamburg, Germany.
  • Merte LR; MAX IV Laboratory, Lund University, Lund, 221 00, Sweden.
  • Pan J; MAX IV Laboratory, Lund University, Lund, 221 00, Sweden.
  • Lundgren E; Malmö University, Materials Science and Applied Mathematics, Malmö, 205 06, Sweden.
Adv Mater ; 35(39): e2304621, 2023 Sep.
Article em En | MEDLINE | ID: mdl-37437599
Corrosion is the main factor limiting the lifetime of metallic materials, and a fundamental understanding of the governing mechanism and surface processes is difficult to achieve since the thin oxide films at the metal-liquid interface governing passivity are notoriously challenging to study. In this work, a combination of synchrotron-based techniques and electrochemical methods is used to investigate the passive film breakdown of a Ni-Cr-Mo alloy, which is used in many industrial applications. This alloy is found to be active toward oxygen evolution reaction (OER), and the OER onset coincides with the loss of passivity and severe metal dissolution. The OER mechanism involves the oxidation of Mo4+ sites in the oxide film to Mo6+ that can be dissolved, which results in passivity breakdown. This is fundamentally different from typical transpassive breakdown of Cr-containing alloys where Cr6+ is postulated to be dissolved at high anodic potentials, which is not observed here. At high current densities, OER also leads to acidification of the solution near the surface, further triggering metal dissolution. The OER plays an important role in the mechanism of passivity breakdown of Ni-Cr-Mo alloys due to their catalytic activity, and this effect needs to be considered when studying the corrosion of catalytically active alloys.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Adv Mater Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Adv Mater Ano de publicação: 2023 Tipo de documento: Article