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Acid-induced surface reconstruction of NiSeTe revealed by NAP-XPS

Ashraf Abdelrahman Assadig ElammenTomáš HrbekDepartment of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech RepublicYevheniia LobkoDepartment of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech RepublicViacheslav KalinovychAngelica ChiodoniDepartment of Applied Science and Technology, Polytechnic University of Turin, Corso Duca degli Abruzzi, 24, 10129 Turin, ItalyMicaela CastellinoCenter for Sustainable Future TechnologiesPeter KúšDepartment of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech RepublicRui GusmãoDepartment of Inorganic Chemistry, University of Chemistry and Technology, Prague Technická 5, Prague 616628, Czech RepublicZdeněk SoferDepartment of Inorganic Chemistry, University of Chemistry and Technology, Prague Technická 5, Prague 616628, Czech RepublicAndrea LambertiCenter for Sustainable Future Technologies
2026en
ABI

Abstract

Surface activation of transition metal chalcogenides (TMC) is commonly attributed to electrochemical reduction and defect formation under applied bias. Herein, we demonstrate that for single-crystalline NiSeTe, a significant fraction of the surface transformation typically associated with electrochemical activation instead arises from purely chemical, sulfuric acid-driven (H 2 SO 4 ) reconstruction occurring prior to any applied potential. Near-ambient pressure X-ray photoelectron spectroscopy (NAP-XPS) is employed to monitor the evolution of pristine, acid-exposed, and washed surfaces. Acid treatment selectively removes native TeO x species and Ni-O(H) environments, while heterogeneous sulfate-derived species collapse into a transient S(VI)-rich adlayer. Subsequent washing eliminates weakly bound sulfates and yields a chemically simplified, oxide-free NiSeTe surface with a thin, stable sulfate termination. Notably, operando, bias-controlled NAP-XPS measurements with simultaneous chronoamperometric current monitoring reveal that cathodic polarization under HER-relevant conditions does not further reduce the acid-reconstructed surface, indicating that sulfuric acid exposure already generates an oxide-free NiSeTe termination prior to electrochemical biasing. In contrast, anodic polarization under OER-relevant conditions promotes tellurium re-oxidation. These findings establish acid-driven chemical restructuring as a dominant contributor to surface activation in NiSeTe and underscore the importance of disentangling chemical and electrochemical effects in chalcogenide electrocatalysts. .

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