光催化甲烷氧化制含氧化合物研究进展
Research Progress of Photocatalytic Methane Oxidation to Oxygenates
DOI: 10.12677/OJNS.2022.102016, PDF,    国家自然科学基金支持
作者: 江佳怡, 高逸飞, 王 瑞, 于小晴, 侯恒达, 石志鑫, 张 航*:沈阳师范大学化学化工学院,辽宁 沈阳
关键词: 甲烷光催化氧化含氧化合物Methane Photocatalytic Oxidation Oxygenates
摘要: 甲烷是一种重要的化石燃料且广泛存在于地壳中。在化学和制药工业中,将低价值的甲烷转化为增值的化学品是有重要意义的。甲烷到有价值的化学品和燃料的转型被认作是催化领域的“圣杯”,它的C-H键本身固有的低反应活性仍然是一个主要的挑战。这篇综述讨论了在低温下光催化甲烷产生的含有氧原子的氧化物。另外,还指出甲烷的光催化氧化可能是未来的研究方向。
Abstract: Methane is an important fossil fuel and widely available on the earth’s crust. The conversion of less valuable methane into value-added chemicals is of significant importance in the chemical and pharmaceutical industries. Although the transformation of methane to valuable chemicals and fuels is considered the “holy grail” in the field of catalysis, the low intrinsic reactivity of its C-H bonds is still a major challenge. This review discusses the advancements in the photocatalytic oxidation of methane at low temperatures with products containing oxygen atom(s). Additionally, the future research direction is noted that may be adopted for methane oxidation via photocatalysis at low temperatures.
文章引用:江佳怡, 高逸飞, 王瑞, 于小晴, 侯恒达, 石志鑫, 张航. 光催化甲烷氧化制含氧化合物研究进展[J]. 自然科学, 2022, 10(2): 123-131. https://doi.org/10.12677/OJNS.2022.102016

参考文献

[1] Peng, H., Rao, C., Zhang, N., Wang, X., Liu, W., Mao, W., et al. (2018) Confined Ultrathin Pd-Ce Nanowires with Outstanding Moisture and SO2 Tolerance in Methane Combustion. Angewandte Chemie International Edition, 57, 8953-8957. [Google Scholar] [CrossRef] [PubMed]
[2] Blanco, H., Nijs, W., Ruf, J. and Faaij, A. (2018) Potential of Power-to-Methane in the EU Energy Transition to a Low Carbon System Using Cost Optimization. Applied Energy, 232, 323-340. [Google Scholar] [CrossRef
[3] Yuliati, L. and Yoshida, H. (2008) Photocatalytic Conversion of Methane. Chemical Society Reviews, 37, 1592-1602. [Google Scholar] [CrossRef] [PubMed]
[4] McAnulty, M.J., Poosarla, V.G., Kim, K.Y., Jasso-Chávez, R., Logan, B.E. and Wood, T.K. (2017) Electricity from Methane by Reversing Methanogenesis. Nature Communications, 8, Article No. 15419. [Google Scholar] [CrossRef] [PubMed]
[5] Wu, K., Sun, L.D. and Yan, C.H. (2016) Recent Progress in Well-Controlled Synthesis of Ceria-Based Nanocatalysts towards Enhanced Catalytic Performance. Advanced Energy Materials, 6, Article ID: 1600501. [Google Scholar] [CrossRef
[6] Ravi, M., Ranocchiari, M., van Bokhoven, J.A. (2017) The Direct Catalytic Oxidation of Methane to Methanol—A Critical Assessment. Angewandte Chemie International Edition, 56, 16464-16483. [Google Scholar] [CrossRef] [PubMed]
[7] Baek, J., Rungtaweevoranit, B., Pei, X., Park, M., Fakra, S.C., Liu, Y.-S., et al. (2018) Bioinspired Metal-Organic Framework Catalysts for Selective Methane Oxidation to Methanol. Journal of the American Chemical Society, 140, 18208-18216. [Google Scholar] [CrossRef] [PubMed]
[8] Balcells, D., Clot, E. and Eisenstein, O. (2010) C-H Bond Activation in Transition Metal Species from a Computational Perspective. Chemical Reviews, 110, 749-823. [Google Scholar] [CrossRef] [PubMed]
[9] Schwach, P., Pan, X. and Bao, X. (2017) Direct Conversion of Methane to Value-Added Chemicals over Heterogeneous Catalysts: Challenges and Prospects. Chemical Reviews, 117, 8497-8520. [Google Scholar] [CrossRef] [PubMed]
[10] Cui, W.G., Zhang, G.Y., Hu, T.L. and Bu, X.-H. (2019) Fabrication of Transition Metal Selenides and Their Applications in Energy Storage. Coordination Chemistry Reviews, 387, 79-120. [Google Scholar] [CrossRef
[11] Rauf, A., Sher Shah, M.S.A., Choi, G.H. and Humayoun, U.B. (2015) Facile Synthesis of Hierarchically Structured Bi2S3/Bi2WO6 Photocatalysts for Highly Efficient Reduction of Cr(VI). ACS Sustainable Chemistry & Engineering, 3, 2847-2855. [Google Scholar] [CrossRef
[12] Sher Shah, M.S.A., Zhang, K., Park, A.R., Kim, K.S., Park, N.-G., Park, J.H., et al. (2013) Single-Step Solvothermal Synthesis of Mesoporous Ag-TiO2-Reduced Graphene Oxide Ternary Composites with Enhanced Photocatalytic Activity. Nanoscale, 5, 5093-5101. [Google Scholar] [CrossRef] [PubMed]
[13] Li, Z., Pan, X. and Yi, Z. (2019) Photocatalytic Oxidation of Methane over CuO Decorated ZnO Nanocatalysts. Journal of Materials Chemistry A, 7, 469-475. [Google Scholar] [CrossRef
[14] Zakaria, Z. and Kamarudin, S.K. (2016) Direct Conversion Technologies of Methane to Methanol: An Overview. Renewable & Sustainable Energy Reviews, 65, 250-261. [Google Scholar] [CrossRef
[15] Kaliaguine, S.L., Shelimov, B.N. and Kazansky, V.B. (1978) Reactions of Methane and Ethane with Hole Centers O−. Journal of Catalysis, 55, 384-393. [Google Scholar] [CrossRef
[16] Wada, K., Yamada, H., Watanabe, Y. and Mitsudo, T. (1998) Selective Photo-Assisted Catalytic Oxidation of Methane and Ethane to Oxygenates Using Supported Vanadium Oxide Catalysts. Journal of the Chemical Society, Faraday Transactions, 94, 1771-1778. [Google Scholar] [CrossRef
[17] Ward, M.D., Brazdil, J.F., Mehandru, S.P. and Anderson, A.B. (1987) Methane Photoactivation on Copper Molybdate. An Experimental and Theoretical Study. The Journal of Chemical Physics, 91, 6515-6521. [Google Scholar] [CrossRef
[18] Thampi, K.R., Kiwi, J. and Grätzel, M. (1988) Room Temperature Photo-Activation of Methane on TiO2 Supported Molybdena. Catalysis Letters, 1, 109-116. [Google Scholar] [CrossRef
[19] Krishna, V., Kamble, V.S., Selvam, P. and Gupta, N.M. (2004) Sunlight-Assisted Photocatalytic Oxidation of Methane over Uranyl-Anchored MCM-41. Catalysis Letters, 98, 113-116. [Google Scholar] [CrossRef
[20] Chen, X., Li, Y., Pan, X., Cortie, D., Huang, X. and Yi, Z. (2016) Photocatalytic Oxidation of Methane over Silver Decorated Zinc Oxide Nanocatalysts. Nature Communications, 7, Arti-cle ID: 12273. [Google Scholar] [CrossRef] [PubMed]
[21] Yang, J., Hao, J., Wei, J., Dai, J. and Li, Y. (2020) Visible-Light-Driven Selective Oxidation of Methane to Methanol on Amorphous FeOOH Coupled m-WO3.Fuel, 266, Article ID: 117104. [Google Scholar] [CrossRef
[22] Song, H., Meng, X., Wang, S., Zhou, W., Wang, X., Kako, T., et al. (2019) Direct and Selective Photocatalytic Oxidation of CH4 to Oxygenates with O2 on Cocatalysts/ZnO at Room Temperature in Water. Journal of the American Chemical Society, 141, 20507-20515. [Google Scholar] [CrossRef] [PubMed]
[23] Luo, L., Gong, Z., Xu, Y., Ma, J., Liu, H., Xing, J., et al. (2022) Binary Au-Cu Reaction Sites Decorated ZnO for Selective Methane Oxidation to C1 Oxygenates with Nearly 100% Selectivity at Room Temperature. Journal of the American Chemical Society, 144, 740-750. [Google Scholar] [CrossRef] [PubMed]
[24] Xie, J., Jin, R., Li, A., Bi, Y., Ruan, Q., Deng, Y., et al. (2018) Highly Selective Oxidation of Methane to Methanol at Ambient Conditions by Titanium Dioxide-Supported Iron Species. Nature Catalysis, 1, 889-896. [Google Scholar] [CrossRef
[25] Zheng, K., Wu, Y., Hu, Z., Jiao, X., Li, L., Zhao, Y., et al. (2021) Selective CH4 Partial Photooxidation by Positively Charged Metal Clusters Anchored on Carbon Aerogel under Mild Conditions Nano Letters, 21, Article ID: 10368. [Google Scholar] [CrossRef] [PubMed]
[26] Ogura, K. and Kataoka, M. (1988) Photochemical Conversion of Methane. Journal of Molecular Catalysis, 43, 371-379. [Google Scholar] [CrossRef
[27] Ogura, K., Migita, C.T. and Fujita, M. (1988) Conversion of Methane to Oxygen-Containing Compounds by the Photochemical Reaction. Industrial & Engineering Chemistry Research, 27, 1387-1390. [Google Scholar] [CrossRef