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Enhanced chlorine evolution

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Enhanced chlorine evolution ( enhanced-chlorine-evolution )

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Enhanced chlorine evolution from dimensionally stable anode by heterojunction with Ti and Bi based mixed metal oxide layers prepared from nanoparticle slurry 7. M. Panizza, G.J.C.r. Cerisola, Direct and mediated anodic oxidation of organic pollutants, 109 (2009) 6541–6569. [PubMed: 19658401] 8. Martinez-Huitle C.A., Ferro S. Electrochemical oxidation of organic pollutants for the wastewater treatment: direct and indirect processes. Chem. Soc. Rev. 2006;35:1324–1340. [PubMed: 17225891] 9. Zhang J.-J., Hu J.-M., Zhang J.-Q., Cao C.-N. IrO2–SiO2 binary oxide films: Geometric or kinetic interpretation of the improved electrocatalytic activity for the oxygen evolution reaction. Int. J. Hydrogen Energy. 2011;36:5218–5226. 10. C.J.E.A. Comninellis, Electrocatalysis in the electrochemical conversion/combustion of organic pollutants for waste water treatment, 39 (1994) 1857–1862. 11. K. Cho, M.R. Hoffmann, BixTi1–xOz Functionalized heterojunction anode with an enhanced reactive chlorine generation efficiency in dilute aqueous solutions, Chemistry of Materials, 27 (2015) 2224–2233. 12. Kronawitter C.X., Vayssieres L., Shen S., Guo L., Wheeler D.A., Zhang J.Z., Antoun B.R., Mao S.S. A perspective on solar-driven water splitting with all-oxide hetero-nanostructures. Energy Environ. Sci. 2011;4 13. Exner K.S., Anton J., Jacob T., Over H. Controlling Selectivity in the Chlorine Evolution Reaction over RuO2-Based catalysts. Angew. Chem. Int. Ed. 2014;53:11032–11035. [PubMed: 25154724] 14. Wei Y., Zhu J.X., Gan Y.X., Cheng G. Titanium glycolate-derived TiO2 nanomaterials: Synthesis and applications. Adv Powder Technol. 2018;29:2289–2311. 15. Kraft A., Stadelmann M., Blaschke M., Kreysig D., Sandt B., Schröder F., Rennau J. Electrochemical water disinfection Part I: Hypochlorite production from very dilute chloride solutions. Journal of Applied Electrochemistry. 1999;29:859–866. 16. Hanaor D.A.H., Sorrell C.C. Review of the anatase to rutile phase transformation. J. Mater. Sci. 2010;46:855–874. 17. Ardizzone S., Bianchi C.L., Cappelletti G., Ionita M., Minguzzi A., Rondinini S., Vertova A. Composite ternary SnO2–IrO2–Ta2O5 oxide electrocatalysts. J. Electroanal. Chem. 2006;589:160–166. 18. Liu X., You B., Yu X.-Y., Chipman J., Sun Y. Electrochemical oxidation to construct a nickel sulfide/oxide heterostructure with improvement of capacitance. J. Mater. Chem. A. 2016;4:11611–11615. 19. Hou Y.-Y., Hu J.-M., Liu L., Zhang J.-Q., Cao C.-N. Effect of calcination temperature on electrocatalytic activities of Ti/IrO2 electrodes in methanol aqueous solutions. Electrochim. Acta. 2006;51:6258–6267. 20. Cooper K.R., Smith M. Electrical test methods for on-line fuel cell ohmic resistance measurement. J. Power Sources. 2006;160:1088–1095. 21. Finke C.E., Omelchenko S.T., Jasper J.T., Lichterman M.F., Read C.G., Lewis N.S., Hoffmann M.R. Enhancing the activity of oxygen-evolution and chlorine-evolution electrocatalysts by atomic layer deposition of TiO2. Energy Environ. Sci. 2019;12:358–365. 22. Rossmeisl J., Qu Z.W., Zhu H., Kroes G.J., Nørskov J.K. Electrolysis of water on oxide surfaces. J. Electroanal. Chem. 2007;607:83–89. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7539370/?report=printable[10/12/2020 8:49:16 AM]

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