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Recent advances on methane partial oxidation toward oxygenates under mild conditions

Author

Listed:
  • Yang, Le
  • Lin, Hongju
  • Fang, Zhihao
  • Yang, Yanhui
  • Liu, Xiaohao
  • Ouyang, Gangfeng

Abstract

Developing a direct conversion route of methane toward oxygenates under milder conditions as a supplement to the two-step route via syngas holds high economic value and demonstrates great potential. The reactions are mostly performed below 200 °C and methane can achieve a 100% atom utilization efficiency. This review summarizes the efforts devoted to developing selective thermo-catalytic oxidation of methane to oxygenates, mainly CH3OH as well as HCHO, HCOOH, CH3COOH and C2H5OH in the past ten years. The intrinsic active site configurations and the catalytic mechanisms are disclosed within different categories of oxidants employed in the reaction system, including O2, H2O2, N2O and H2O. The specific role of H2O is also discussed. Additionally, perspectives on catalyst design and process innovation are presented. It is essential to synthesize catalysts with unitary and clear structures, despite their difficulty, to study the true structure-performance relationship, which in return provides an insight for the catalyst design. From a cost, reactivity and safety stand point, only O2 is deemed acceptable. Possible future directions of research include utilizing CO2 as oxidant or using ILs as solvent. Given the feature of direct methane conversion to methanol being a thermodynamically feasible yet kinetically unfavorable process, which exhibiting a conversion-selectivity tradeoff issue, diversifying innovation of both catalyst and reaction process would offer a solution.

Suggested Citation

  • Yang, Le & Lin, Hongju & Fang, Zhihao & Yang, Yanhui & Liu, Xiaohao & Ouyang, Gangfeng, 2023. "Recent advances on methane partial oxidation toward oxygenates under mild conditions," Renewable and Sustainable Energy Reviews, Elsevier, vol. 184(C).
  • Handle: RePEc:eee:rensus:v:184:y:2023:i:c:s1364032123004185
    DOI: 10.1016/j.rser.2023.113561
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    References listed on IDEAS

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    1. Yingying Fan & Wencai Zhou & Xueying Qiu & Hongdong Li & Yuheng Jiang & Zhonghui Sun & Dongxue Han & Li Niu & Zhiyong Tang, 2021. "Selective photocatalytic oxidation of methane by quantum-sized bismuth vanadate," Nature Sustainability, Nature, vol. 4(6), pages 509-515, June.
    2. Yuanyi Zhou & Ling Zhang & Wenzhong Wang, 2019. "Direct functionalization of methane into ethanol over copper modified polymeric carbon nitride via photocatalysis," Nature Communications, Nature, vol. 10(1), pages 1-8, December.
    3. Xiang Yu & Vincent Waele & Axel Löfberg & Vitaly Ordomsky & Andrei Y. Khodakov, 2019. "Selective photocatalytic conversion of methane into carbon monoxide over zinc-heteropolyacid-titania nanocomposites," Nature Communications, Nature, vol. 10(1), pages 1-10, December.
    4. Cheng-Shiuan Li & Gérôme Melaet & Walter T. Ralston & Kwangjin An & Christopher Brooks & Yifan Ye & Yi-Sheng Liu & Junfa Zhu & Jinghua Guo & Selim Alayoglu & Gabor A. Somorjai, 2015. "High-performance hybrid oxide catalyst of manganese and cobalt for low-pressure methanol synthesis," Nature Communications, Nature, vol. 6(1), pages 1-5, May.
    5. Chong, Zheng Rong & Yang, She Hern Bryan & Babu, Ponnivalavan & Linga, Praveen & Li, Xiao-Sen, 2016. "Review of natural gas hydrates as an energy resource: Prospects and challenges," Applied Energy, Elsevier, vol. 162(C), pages 1633-1652.
    6. Rahul Banerjee & Yegor Proshlyakov & John D. Lipscomb & Denis A. Proshlyakov, 2015. "Structure of the key species in the enzymatic oxidation of methane to methanol," Nature, Nature, vol. 518(7539), pages 431-434, February.
    7. Junjun Shan & Mengwei Li & Lawrence F. Allard & Sungsik Lee & Maria Flytzani-Stephanopoulos, 2017. "Mild oxidation of methane to methanol or acetic acid on supported isolated rhodium catalysts," Nature, Nature, vol. 551(7682), pages 605-608, November.
    8. Shuxing Bai & Fangfang Liu & Bolong Huang & Fan Li & Haiping Lin & Tong Wu & Mingzi Sun & Jianbo Wu & Qi Shao & Yong Xu & Xiaoqing Huang, 2020. "High-efficiency direct methane conversion to oxygenates on a cerium dioxide nanowires supported rhodium single-atom catalyst," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    9. Benjamin E. R. Snyder & Pieter Vanelderen & Max L. Bols & Simon D. Hallaert & Lars H. Böttger & Liviu Ungur & Kristine Pierloot & Robert A. Schoonheydt & Bert F. Sels & Edward I. Solomon, 2016. "The active site of low-temperature methane hydroxylation in iron-containing zeolites," Nature, Nature, vol. 536(7616), pages 317-321, August.
    10. Ramakrishnan Balasubramanian & Stephen M. Smith & Swati Rawat & Liliya A. Yatsunyk & Timothy L. Stemmler & Amy C. Rosenzweig, 2010. "Oxidation of methane by a biological dicopper centre," Nature, Nature, vol. 465(7294), pages 115-119, May.
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