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dc.contributor.authorAlmassi, Soroush
dc.contributor.authorChaplin, Brian P.
dc.contributor.authorMehraeen, Shafigh
dc.contributor.authorLeSuer, Robert J.
dc.contributor.authorJing, Yin
dc.date.accessioned2022-02-18T11:24:50Z
dc.date.available2022-02-18T11:24:50Z
dc.date.issued2018
dc.identifier.citationJing Y., Almassi S., Mehraeen S., LeSuer R. J. , Chaplin B. P. , "The roles of oxygen vacancies, electrolyte composition, lattice structure, and doping density on the electrochemical reactivity of Magneli phase TiO2 anodes", JOURNAL OF MATERIALS CHEMISTRY A, cilt.6, sa.46, ss.23828-23839, 2018
dc.identifier.issn2050-7488
dc.identifier.otherav_f4d73581-0ca9-4869-bc21-0e17275f6fc5
dc.identifier.othervv_1032021
dc.identifier.urihttp://hdl.handle.net/20.500.12627/181138
dc.identifier.urihttps://doi.org/10.1039/c8ta03719a
dc.description.abstractSubstoichiometric TiO2 (TinO2n-1, 4 n 10) is a promising and cost-effective material, that is being investigated for many applications, such as information storage, energy storage and conversion, and water treatment. Upon extended anodic polarization, TinO2n-1 reportedly suffers from gradual loss in conductivity and electrochemical reactivity. In this study, the surface deactivation and reactivation mechanisms were examined on a TinO2n-1 monolithic electrode in three different electrolyte solutions (i.e., H2SO4, HClO4, HCl). The intrinsic electronic properties, charge transfer kinetics, crystalline structure, and surface composition were examined experimentally after anodic and cathodic polarizations. Statistically equivalent results were obtained from local scanning electrochemical microscopy (SECM) and bulk electrochemical impedance spectroscopy measurement, which indicate that spatially resolved SECM data accurately characterized charge transfer kinetics of the TinO2n-1 electrode at the micron-scale. Results indicate that decreases in conductivity and charge transfer kinetics after anodic polarizations in all three electrolytes were primarily attributed to the loss of charge carriers, such as H+ discharge at Ti3+ point donor sites, and the process was reversible during cathodic polarization via H+ intercalation. In the H2SO4 electrolyte reversible surface passivation also occurred, which was attributed to the formation of TiOSO4 surface species whose presence were supported by experimental measurements and density functional theory calculations. It was also determined that the TinO2n-1 crystal structure directly affected the hydroxyl radical formation rate, with the highest rate observed for Ti4O7, which also possessed the highest charge carrier density.
dc.language.isoeng
dc.subjectMühendislik, Bilişim ve Teknoloji (ENG)
dc.subjectMALZEME BİLİMİ, MULTIDISCIPLINARY
dc.subjectMalzeme Bilimi
dc.subjectTarımsal Bilimler
dc.subjectZiraat
dc.subjectTarım Makineleri
dc.subjectTarımda Enerji
dc.subjectBiyoyakıt Teknolojisi
dc.subjectENERJİ VE YAKITLAR
dc.subjectTemel Bilimler
dc.subjectMühendislik ve Teknoloji
dc.subjectEnergy Engineering and Power Technology
dc.subjectSurfaces and Interfaces
dc.subjectRenewable Energy, Sustainability and the Environment
dc.subjectMetals and Alloys
dc.subjectMaterials Chemistry
dc.subjectGeneral Engineering
dc.subjectGeneral Energy
dc.subjectChemistry (miscellaneous)
dc.subjectGeneral Materials Science
dc.subjectEngineering (miscellaneous)
dc.subjectGeneral Chemistry
dc.subjectFuel Technology
dc.subjectPhysical and Theoretical Chemistry
dc.subjectSurfaces, Coatings and Films
dc.subjectEnergy (miscellaneous)
dc.subjectPhysical Sciences
dc.subjectFizikokimya
dc.subjectMühendislik
dc.subjectTemel Bilimler (SCI)
dc.subjectKİMYA, FİZİKSEL
dc.subjectKimya
dc.titleThe roles of oxygen vacancies, electrolyte composition, lattice structure, and doping density on the electrochemical reactivity of Magneli phase TiO2 anodes
dc.typeMakale
dc.relation.journalJOURNAL OF MATERIALS CHEMISTRY A
dc.contributor.departmentUniversity of Illinois System , ,
dc.identifier.volume6
dc.identifier.issue46
dc.identifier.startpage23828
dc.identifier.endpage23839
dc.contributor.firstauthorID3386852


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