logo

Electrochemical Tuning of CO2 Reactivity in Ionic Liquids

PDF Publication Title:

Electrochemical Tuning of CO2 Reactivity in Ionic Liquids ( electrochemical-tuning-co2-reactivity-ionic-liquids )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 018

C 2020, 6, 34 18 of 21 75. Zhang, S.; Fan, Q.; Xia, R.; Meyer, T.J. CO2 reduction: From homogeneous to heterogeneous electrocatalysis. Acc. Chem. Res. 2020, 53, 255–264. [CrossRef] 76. Wang, W.; Zhang, J.; Wang, H.; Chen, L.; Bian, Z. Photocatalytic and electrocatalytic reduction of CO2 to methanol by the homogeneous pyridine-based systems. Appl. Catal. A Gen. 2016, 520, 1–6. [CrossRef] 77. Theaker, N.; Strain, J.M.; Kumar, B.; Brian, J.P.; Kumari, S.; Spurgeon, J.M. Heterogeneously catalyzed two-step cascade electrochemical reduction of CO2 to ethanol. Electrochim. Acta 2018, 274, 1–8. [CrossRef] 78. Geri, J.B.; Ciatti, J.L.; Szymczak, N.K. Charge effects regulate reversible CO2 reduction catalysis. Chem. Commun. 2018, 54, 7790–7793. [CrossRef] 79. Benson, E.E.; Kubiak, C.P.; Sathrum, A.J.; Smieja, J.M. Electrocatalytic and homogeneous approaches to conversion of CO2 to liquid fuels. Chem. Soc. Rev. 2009, 38, 89–99. [CrossRef] 80. Grills, D.C.; Ertem, M.Z.; McKinnon, M.; Ngo, K.T.; Rochford, J. Mechanistic aspects of CO2 reduction catalysis with manganese-based molecular catalysts. Coord. Chem. Rev. 2018, 374, 173–217. [CrossRef] 81. Luan, Y.X.; Ye, M. Transition metal-mediated or catalyzed hydrocarboxylation of olefins with CO2. Tetrahedron Lett. 2018, 59, 853–861. [CrossRef] 82. Xie, J.N.; Yu, B.; Zhou, Z.H.; Fu, H.C.; Wang, N.; He, L.N. Copper(I)-based ionic liquid-catalyzed carboxylation of terminal alkynes with CO2 at atmospheric pressure. Tetrahedron Lett. 2015, 56, 7059–7062. [CrossRef] 83. Mizuno, H.; Takaya, J.; Iwasawa, N. Rhodium(I)-catalyzed direct carboxylation of arenes with CO2 via chelation-assisted C-H bond activation. J. Am. Chem. Soc. 2011, 133, 1251–1253. [CrossRef] 84. Honda, M.; Tamura, M.; Nakagawa, Y.; Tomishige, K. Catalytic CO2 conversion to organic carbonates with alcohols in combination with dehydration system. Catal. Sci. Technol. 2014, 4, 2830–2845. [CrossRef] 85. Tappe, N.A.; Reich, R.M.; D’Elia, V.; Kühn, F.E. Current advances in the catalytic conversion of carbon dioxide by molecular catalysts: An update. Dalt. Trans. 2018, 47, 13281–13313. [CrossRef] 86. Kleij, A.W.; North, M.; Urakawa, A. CO2 Catalysis. ChemSusChem 2017, 10, 1036–1038. [CrossRef] 87. Dey, G.R.; Belapurkar, A.D.; Kishore, K. Photo-catalytic reduction of carbon dioxide to methane using TiO2 as suspension in water. J. Photochem. Photobiol. A Chem. 2004, 163, 503–508. [CrossRef] 88. Veselovskaya, J.V.; Parunin, P.D.; Netskina, O.V.; Kibis, L.S.; Lysikov, A.I.; Okunev, A.G. Catalytic methanation of carbon dioxide captured from ambient air. Energy 2018, 159, 766–773. [CrossRef] 89. Zhao, G.; Huang, X.; Wang, X.; Wang, X. Progress in catalyst exploration for heterogeneous CO2 reduction and utilization: A critical review. J. Mater. Chem. A 2017, 5, 21625–21649. [CrossRef] 90. Dokania, A.; Ramirez, A.; Bavykina, A.; Gascon, J. Heterogeneous Catalysis for the Valorization of CO2: Role of Bifunctional Processes in the Production of Chemicals. ACS Energy Lett. 2018, 4, 167–176. [CrossRef] 91. Gennaro, A.; Isse, A.A.; Savéant, J.M.; Severin, M.G.; Vianello, E. Homogeneous electron transfer catalysis of the electrochemical reduction of carbon dioxide. Do aromatic anion radicals react in an outer-sphere manner? J. Am. Chem. Soc. 1996, 118, 7190–7196. [CrossRef] 92. Costentin, C.; Savéant, J.-M. Multielectron, multistep molecular catalysis of electrochemical reactions: Benchmarking of homogeneous catalysts. ChemElectroChem 2014, 1, 1226–1236. [CrossRef] 93. Costentin, C.; Savéant, J.M. Homogeneous catalysis of electrochemical reactions: The steady-state and nonsteady-state statuses of intermediates. ACS Catal. 2018, 8, 5286–5297. [CrossRef] 94. Costentin, C.; Robert, M.; Savéant, J.M. Catalysis of the electrochemical reduction of carbon dioxide. Chem. Soc. Rev. 2013, 42, 2423–2436. [CrossRef] 95. Costentin, C.; Savéant, J.M. Homogeneous molecular catalysis of electrochemical reactions: Catalyst benchmarking and optimization strategies. J. Am. Chem. Soc. 2017, 139, 8245–8250. [CrossRef] 96. Zhang, B.A.; Ozel, T.; Elias, J.S.; Costentin, C.; Nocera, D.G. Interplay of homogeneous reactions, mass transport, and kinetics in determining selectivity of the reduction of CO2 on gold electrodes. ACS Cent. Sci. 2019, 5, 1097–1105. [CrossRef] 97. Nielsen, I.M.B.; Leung, K. Cobalt-porphyrin catalyzed electrochemical reduction of carbon dioxide in water. 1. A density functional study of intermediates. J. Phys. Chem. A 2010, 114, 10166–10173. [CrossRef] 98. Leung, K.; Nielsen, I.M.B.; Sai, N.; Medforth, C.; Shelnutt, J.A. Cobalt-porphyrin catalyzed electrochemical reduction of carbon dioxide in water. 2. Mechanism from first principles. J. Phys. Chem. A 2010, 114, 10174–10184. [CrossRef] 99. Shen, J.; Kolb, M.J.; Göttle, A.J.; Koper, M.T.M. DFT Study on the mechanism of the electrochemical reduction of CO2 catalyzed by cobalt porphyrins. J. Phys. Chem. C 2016, 120, 15714–15721. [CrossRef]

PDF Image | Electrochemical Tuning of CO2 Reactivity in Ionic Liquids

electrochemical-tuning-co2-reactivity-ionic-liquids-018

PDF Search Title:

Electrochemical Tuning of CO2 Reactivity in Ionic Liquids

Original File Name Searched:

carbon-06-00034.pdf

DIY PDF Search: Google It | Yahoo | Bing

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

IT XR Project Redstone NFT Available for Sale: NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Be part of the future with this NFT. Can be bought and sold but only one design NFT exists. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Turbine IT XR Project Redstone Design: NFT for sale... NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Includes all rights to this turbine design, including license for Fluid Handling Block I and II for the turbine assembly and housing. The NFT includes the blueprints (cad/cam), revenue streams, and all future development of the IT XR Project Redstone... More Info

Infinity Turbine ROT Radial Outflow Turbine 24 Design and Worldwide Rights: NFT for sale... NFT for the ROT 24 energy turbine. Be part of the future with this NFT. This design can be bought and sold but only one design NFT exists. You may manufacture the unit, or get the revenues from its sale from Infinity Turbine. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Supercritical CO2 10 Liter Extractor Design and Worldwide Rights: The Infinity Supercritical 10L CO2 extractor is for botanical oil extraction, which is rich in terpenes and can produce shelf ready full spectrum oil. With over 5 years of development, this industry leader mature extractor machine has been sold since 2015 and is part of many profitable businesses. The process can also be used for electrowinning, e-waste recycling, and lithium battery recycling, gold mining electronic wastes, precious metals. CO2 can also be used in a reverse fuel cell with nafion to make a gas-to-liquids fuel, such as methanol, ethanol and butanol or ethylene. Supercritical CO2 has also been used for treating nafion to make it more effective catalyst. This NFT is for the purchase of worldwide rights which includes the design. More Info

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

Infinity Turbine Products: Special for this month, any plans are $10,000 for complete Cad/Cam blueprints. License is for one build. Try before you buy a production license. May pay by Bitcoin or other Crypto. Products Page... More Info

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP