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Magnéli phase titanium sub-oxides synthesis, fabrication and its application for environmental remediation: Current status and prospect

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dc.contributor.author KUMAR A.
dc.contributor.author BARBHUIYA N.H.
dc.contributor.author SINGH S.P.
dc.date.accessioned 2023-03-17T06:20:47Z
dc.date.available 2023-03-17T06:20:47Z
dc.date.issued 2022
dc.identifier.citation Chemosphere,307 en_US
dc.identifier.issn 456535
dc.identifier.uri https://dx.doi.org/10.1016/j.chemosphere.2022.135878
dc.identifier.uri http://localhost:8080/xmlui/handle/100/43686
dc.description.abstract Sub-stoichiometric titanium oxide, also called titanium suboxides (tso), had been a focus of research for many decades with a chemical composition of tino2n-1 (n ≥ 1). It has a unique oxygen-deficient crystal structure which provides it an outstanding electrical conductivity and high corrosion resistance similar to ceramic materials. High electrical conductivity and ability to sustain in adverse media make these phases a point of attention for researchers in energy storage and environmental remediation applications. The magnéli phase-based reactive electroconductive membranes (rem) and electrodes have demonstrated the electrochemical oxidation of pollutants in the water in flow-through and flow by configuration. Additionally, it has also shown its potential for visible light photochemical degradation as well. This review attempts to summarize state of the art in various magnéli phases materials synthesis routes and their electrochemical and photochemical ability for environmental application. The manuscript introduces the magnéli phase, its crystal structure, and catalytic properties, followed by the recent development in synthesis methods from diverse titanium sources, notably tio2 through thermal reduction. The various fabrication methods for magnéli phase-base rems and electrodes have also been summarized. Furthermore, the article discussed the environmental remediations via electrochemical and photochemical advanced oxidation processes. Additionally, the hybrid technology with rems and electrodes is used to counter membrane biofouling and develop electrochemical sensing devices for the pollutants. The magnéli phase materials have a bright future for both electrochemical and photochemical advanced oxidation of emerging contaminants in water and wastewater treatment. © 2022 elsevier ltd en_US
dc.language.iso English en_US
dc.publisher Elsevier Ltd en_US
dc.subject ELECTROCHEMICAL ADVANCED OXIDATION PROCESS en_US
dc.subject ELECTRODES MATERIALS en_US
dc.subject MAGNÉLI PHASE en_US
dc.subject REACTIVE ELECTROCHEMICAL MEMBRANES en_US
dc.subject TITANIUM SUBOXIDE en_US
dc.subject.other Corrosion resistance en_US
dc.subject.other Crystal structure en_US
dc.subject.other Electric conductivity en_US
dc.subject.other Electrochemical electrodes en_US
dc.subject.other Electrochemical oxidation en_US
dc.subject.other Fabrication en_US
dc.subject.other Membranes en_US
dc.subject.other Wastewater treatment en_US
dc.subject.other Water pollution en_US
dc.subject.other Electrochemical advanced oxidation process en_US
dc.subject.other Electrochemical membranes en_US
dc.subject.other Electrochemicals en_US
dc.subject.other Electrode material en_US
dc.subject.other Environmental remediation en_US
dc.subject.other Magneli phase en_US
dc.subject.other Photochemicals en_US
dc.subject.other Reactive electrochemical membrane en_US
dc.subject.other Titania en_US
dc.subject.other Titania suboxide en_US
dc.subject.other Titanium dioxide en_US
dc.subject.other carbon en_US
dc.subject.other hydrogen en_US
dc.subject.other titanium dioxide en_US
dc.subject.other oxide en_US
dc.subject.other oxygen en_US
dc.subject.other titanium en_US
dc.subject.other titanium dioxide en_US
dc.subject.other water en_US
dc.subject.other chemical composition en_US
dc.subject.other electrical conductivity en_US
dc.subject.other electrochemical method en_US
dc.subject.other electrode en_US
dc.subject.other oxidation en_US
dc.subject.other remediation en_US
dc.subject.other titanium en_US
dc.subject.other atmosphere en_US
dc.subject.other biofouling en_US
dc.subject.other catalysis en_US
dc.subject.other chemical oxygen demand en_US
dc.subject.other crossflow filtration en_US
dc.subject.other crystal structure en_US
dc.subject.other current density en_US
dc.subject.other decontamination en_US
dc.subject.other ecosystem restoration en_US
dc.subject.other electrochemistry en_US
dc.subject.other environmental temperature en_US
dc.subject.other impedance spectroscopy en_US
dc.subject.other light en_US
dc.subject.other membrane technology en_US
dc.subject.other oxidation en_US
dc.subject.other photochemistry en_US
dc.subject.other pollutant en_US
dc.subject.other Review en_US
dc.subject.other synthesis en_US
dc.subject.other temperature en_US
dc.subject.other waste water management en_US
dc.subject.other chemistry en_US
dc.subject.other electrode en_US
dc.subject.other oxidation reduction reaction en_US
dc.subject.other water pollutant en_US
dc.subject.other Electrodes en_US
dc.subject.other Environmental Restoration and Remediation en_US
dc.subject.other Oxidation-Reduction en_US
dc.subject.other Oxides en_US
dc.subject.other Oxygen en_US
dc.subject.other Titanium en_US
dc.subject.other Water en_US
dc.subject.other Water Pollutants, Chemical en_US
dc.title Magnéli phase titanium sub-oxides synthesis, fabrication and its application for environmental remediation: Current status and prospect en_US
dc.type Review en_US


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