Research Progress in Conversion of CO2 to Valuable Fuels

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Molecules 2020, 25, 3653 20 of 23 84. Kothandaraman, J.; Goeppert, A.; Czaun, M.; Olah, G.A.; Prakash, G.K.S. Conversion of CO2 from Air into Methanol Using a Polyamine and a Homogeneous Ruthenium Catalyst. J. Am. Chem. Soc. 2016, 138, 778–781. [CrossRef] [PubMed] 85. Everett, M.; Wass, D.F. Highly productive CO2 hydrogenation to methanol—A tandem catalytic approach via amide intermediates. Chem. Commun. 2017, 53, 9502–9504. [CrossRef] [PubMed] 86. Kar, S.; Sen, R.; Kothandaraman, J.; Goeppert, A.; Chowdhury, R.; Munoz, S.B.; Haiges, R.; Prakash, G.K.S. Mechanistic Insights into Ruthenium-Pincer-Catalyzed Amine-Assisted Homogeneous Hydrogenation of CO2 to Methanol. J. Am. Chem. Soc. 2019, 141, 3160–3170. [CrossRef] 87. Sun, Z.; Ma, T.; Tao, H.; Fan, Q.; Han, B. Fundamentals and Challenges of Electrochemical CO2 Reduction Using Two-Dimensional Materials. Chem 2017, 3, 560–587. [CrossRef] 88. Sahara, G.; Kumagai, H.; Maeda, K.; Kaeffer, N.; Artero, V.; Higashi, M.; Abe, R.; Ishitani, O. Photoelectrochemical Reduction of CO2 Coupled to Water Oxidation Using a Photocathode with a Ru(II)–Re(I) Complex Photocatalyst and a CoOx/TaON Photoanode. J. Am. Chem. Soc. 2016, 138, 14152–14158. [CrossRef] 89. Song, J.T.; Ryoo, H.; Cho, M.; Kim, J.; Kim, J.-G.; Chung, S.-Y.; Oh, J. Nanoporous Au Thin Films on Si Photoelectrodes for Selective and Efficient Photoelectrochemical CO2 Reduction. Adv. Energy Mater. 2017, 7, 1601103. [CrossRef] 90. DuChene, J.S.; Tagliabue, G.; Welch, A.J.; Cheng, W.-H.; Atwater, H.A. Hot Hole Collection and Photoelectrochemical CO2 Reduction with Plasmonic Au/p-GaN Photocathodes. Nano Lett. 2018, 18, 2545–2550. [CrossRef] 91. Neyts, E.C.; Ostrikov, K.; Sunkara, M.K.; Bogaerts, A. Plasma Catalysis: Synergistic Effects at the Nanoscale. Chem. Rev. 2015, 115, 13408–13446. [CrossRef] [PubMed] 92. Ding, P.; Hu, Y.; Deng, J.; Chen, J.; Zha, C.; Yang, H.; Han, N.; Gong, Q.; Li, L.; Wang, T.; et al. Controlled chemical etching leads to efficient silicon–bismuth interface for photoelectrochemical CO2 reduction to formate. Mater. Today Chem. 2019, 11, 80–85. [CrossRef] 93. Castro, S.; Albo, J.; Irabien, A. Continuous conversion of CO2 to alcohols in a TiO2 photoanode-driven photoelectrochemical system. J. Chem. Technol. Biotechnol. 2020, 95, 1876–1882. [CrossRef] 94. Gurudayal; Beeman, J.W.; Bullock, J.; Wang, H.; Eichhorn, J.; Towle, C.; Javey, A.; Toma, F.M.; Mathews, N.; Ager, J.W. Si photocathode with Ag-supported dendritic Cu catalyst for CO2 reduction. Energy Environ. Sci. 2019, 12, 1068–1077. [CrossRef] 95. Choi, S.K.; Kang, U.; Lee, S.; Ham, D.J.; Ji, S.M.; Park, H. Sn-Coupled p-Si Nanowire Arrays for Solar Formate Production from CO2. Adv. Energy Mater. 2014, 4, 1301614. [CrossRef] 96. Rajeshwar, K.; de Tacconi, N.R.; Ghadimkhani, G.; Chanmanee, W.; Janáky, C. Tailoring Copper Oxide Semiconductor Nanorod Arrays for Photoelectrochemical Reduction of Carbon Dioxide to Methanol. ChemPhysChem 2013, 14, 2251–2259. [CrossRef] 97. Shan, B.; Vanka, S.; Li, T.-T.; Troian-Gautier, L.; Brennaman, M.K.; Mi, Z.; Meyer, T.J. Binary molecular-semiconductor p–n junctions for photoelectrocatalytic CO2 reduction. Nat. Energy 2019, 4, 290–299. [CrossRef] 98. Rao, K.R.; Pishgar, S.; Strain, J.; Kumar, B.; Atla, V.; Kumari, S.; Spurgeon, J.M. Photoelectrochemical reduction of CO2 to HCOOH on silicon photocathodes with reduced SnO2 porous nanowire catalysts. J. Mater. Chem. A 2018, 6, 1736–1742. [CrossRef] 99. Huang, X.; Shen, Q.; Liu, J.; Yang, N.; Zhao, G. A CO2 adsorption-enhanced semiconductor/metal-complex hybrid photoelectrocatalytic interface for efficient formate production. Energy Environ. Sci. 2016, 9, 3161–3171. [CrossRef] 100. Liu, J.; Guo, C.; Hu, X.; Zhao, G. Bio-proton coupled semiconductor/metal-complex hybrid photoelectrocatalytic interface for efficient CO2 reduction. Green Chem. 2019, 21, 339–348. [CrossRef] 101. Li, P.; Jing, H.; Xu, J.; Wu, C.; Peng, H.; Lu, J.; Lu, F. High-efficiency synergistic conversion of CO2 to methanol using Fe2O3 nanotubes modified with double-layer Cu2O spheres. Nanoscale 2014, 6, 11380–11386. [CrossRef] [PubMed] 102. Yang, X.; Fugate, E.A.; Mueanngern, Y.; Baker, L.R. Photoelectrochemical CO2 Reduction to Acetate on Iron–Copper Oxide Catalysts. ACS Catal. 2017, 7, 177–180. [CrossRef] 103. Ardao,I.;Hwang,E.T.;Zeng,A.-P.InVitroMultienzymaticReactionSystemsforBiosynthesis.InFundamentals and Application of New Bioproduction Systems; Zeng, A.-P., Ed.; Springer: Berlin/Heidelberg, Germany, 2013; pp. 153–184. [CrossRef] 104. Kuwabata, S.; Tsuda, R.; Nishida, K.; Yoneyama, H. Electrochemical Conversion of Carbon Dioxide to Methanol with Use of Enzymes as Biocatalysts. Chem. Lett. 1993, 22, 1631–1634. [CrossRef]

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