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Research Progress in Conversion of CO2 to Valuable Fuels

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Research Progress in Conversion of CO2 to Valuable Fuels ( research-progress-conversion-co2-valuable-fuels )

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Molecules 2020, 25, 3653 22 of 23 125. Yadav,D.;Yadav,R.K.;Kumar,A.;Park,N.-J.;Kim,J.Y.;Baeg,J.-O.Fullerenepolymerfilmasahighlyefficient photocatalyst for selective solar fuel production from CO2. J. Appl. Polym. Sci. 2020, 137, 48536. [CrossRef] 126. Gu, F.; Wang, Y.; Meng, Z.; Liu, W.; Qiu, L. A coupled photocatalytic/enzymatic system for sustainable conversion of CO2 to formate. Catal. Commun. 2020, 136, 105903. [CrossRef] 127. Tian, Y.; Zhou, Y.; Zong, Y.; Li, J.; Yang, N.; Zhang, M.; Guo, Z.; Song, H. Construction of Functionally Compartmental Inorganic Photocatalyst–Enzyme System via Imitating Chloroplast for Efficient Photoreduction of CO2 to Formic Acid. ACS Appl. Mater. Interfaces 2020. [CrossRef] 128. Ma, K.; Yehezkeli, O.; Park, E.; Cha, J.N. Enzyme Mediated Increase in Methanol Production from Photoelectrochemical Cells and CO2. ACS Catal. 2016, 6, 6982–6986. [CrossRef] 129. King, P.W. Designing interfaces of hydrogenase–nanomaterial hybrids for efficient solar conversion. Biochim. Biophys. Acta (BBA) Bioenerg. 2013, 1827, 949–957. [CrossRef] 130. Sakimoto, K.K.; Kornienko, N.; Cestellos-Blanco, S.; Lim, J.; Liu, C.; Yang, P. Physical Biology of the Materials–Microorganism Interface. J. Am. Chem. Soc. 2018, 140, 1978–1985. [CrossRef] 131. Nam, D.H.; Kuk, S.K.; Choe, H.; Lee, S.; Ko, J.W.; Son, E.J.; Choi, E.-G.; Kim, Y.H.; Park, C.B. Enzymatic photosynthesis of formate from carbon dioxide coupled with highly efficient photoelectrochemical regeneration of nicotinamide cofactors. Green Chem. 2016, 18, 5989–5993. [CrossRef] 132. Yang, J.; Wang, D.; Han, H.; Li, C. Roles of Cocatalysts in Photocatalysis and Photoelectrocatalysis. Acc. Chem. Res. 2013, 46, 1900–1909. [CrossRef] [PubMed] 133. Cooney,M.J.;Svoboda,V.;Lau,C.;Martin,G.;Minteer,S.D.Enzymecatalysedbiofuelcells.EnergyEnviron.Sci. 2008, 1, 320–337. [CrossRef] 134. Choi,E.-G.;Yeon,Y.J.;Min,K.;Kim,Y.H.Communication—CO2ReductiontoFormate:AnElectro-Enzymatic Approach Using a Formate Dehydrogenase from Rhodobacter capsulatus. J. Electrochem. Soc. 2018, 165, H446–H448. [CrossRef] 135. Dreyer, D.R.; Miller, D.J.; Freeman, B.D.; Paul, D.R.; Bielawski, C.W. Perspectives on poly(dopamine). Chem. Sci. 2013, 4, 3796–3802. [CrossRef] 136. Shi, J.; Yang, C.; Zhang, S.; Wang, X.; Jiang, Z.; Zhang, W.; Song, X.; Ai, Q.; Tian, C. Polydopamine Microcapsules with Different Wall Structures Prepared by a Template-Mediated Method for Enzyme Immobilization. ACS Appl. Mater. Interfaces 2013, 5, 9991–9997. [CrossRef] 137. Kuk,S.K.;Singh,R.K.;Nam,D.H.;Singh,R.;Lee,J.-K.;Park,C.B.PhotoelectrochemicalReductionofCarbon Dioxide to Methanol through a Highly Efficient Enzyme Cascade. Angew. Chem. Int. Ed. 2017, 56, 3827–3832. [CrossRef] 138. Zhang,L.;Vilà,N.;Kohring,G.-W.;Walcarius,A.;Etienne,M.CovalentImmobilizationof(2,2′-Bipyridyl) (Pentamethylcyclopentadienyl)-Rhodium Complex on a Porous Carbon Electrode for Efficient Electrocatalytic NADH Regeneration. ACS Catal. 2017, 7, 4386–4394. [CrossRef] 139. Srikanth,S.;Alvarez-Gallego,Y.;Vanbroekhoven,K.;Pant,D.EnzymaticElectrosynthesisofFormicAcid through Carbon Dioxide Reduction in a Bioelectrochemical System: Effect of Immobilization and Carbonic Anhydrase Addition. ChemPhysChem 2017, 18, 3174–3181. [CrossRef] 140. Sokol,K.P.;Robinson,W.E.;Oliveira,A.R.;Warnan,J.;Nowaczyk,M.M.;Ruff,A.;Pereira,I.A.C.;Reisner,E. Photoreduction of CO2 with a Formate Dehydrogenase Driven by Photosystem II Using a Semi-artificial Z-Scheme Architecture. J. Am. Chem. Soc. 2018, 140, 16418–16422. [CrossRef] 141. Amao, Y.; Fujimura, M.; Miyazaki, M.; Tadokoro, A.; Nakamura, M.; Shuto, N. A visible-light driven electrochemical biofuel cell with the function of CO2 conversion to formic acid: Coupled thylakoid from microalgae and biocatalyst immobilized electrodes. New J. Chem. 2018, 42, 9269–9280. [CrossRef] 142. Srikanth,S.;Maesen,M.;Dominguez-Benetton,X.;Vanbroekhoven,K.;Pant,D.Enzymaticelectrosynthesis of formate through CO2 sequestration/reduction in a bioelectrochemical system (BES). Bioresour. Technol. 2014, 165, 350–354. [CrossRef] 143. Ali, I.; Gill, A.; Omanovic, S. Direct electrochemical regeneration of the enzymatic cofactor 1,4-NADH employing nano-patterned glassy carbon/Pt and glassy carbon/Ni electrodes. Chem. Eng. J. 2012, 188, 173–180. [CrossRef] 144. Xiu,Y.;Zhang,X.;Feng,Y.;Wei,R.;Wang,S.;Xia,Y.;Cao,M.;Wang,S.Peptide-mediatedporphyrinbased hierarchical complexes for light-to-chemical conversion. Nanoscale 2020, 12, 15201–15208. [CrossRef] 145. Wang,S.;Zhang,D.;Zhang,X.;Yu,D.;Jiang,X.;Wang,Z.;Cao,M.;Xia,Y.;Liu,H.Shortpeptide-regulated aggregation of porphyrins for photoelectric conversion. Sustain. Energy Fuels 2019, 3, 529–538. [CrossRef]

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