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Titlebook: Catalysis and the Mechanism of Methane Conversion to Chemicals; C-C and C-O Bonds Fo Toshihide Baba,Akimitsu Miyaji Book 2020 Springer Natu

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楼主: 忠诚
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and homogenous catalysts and biocatalysts and/or their reaction environments control the formation of highly energetic species from methane contributing to C-C and C-O bond formation. .978-981-15-4134-6978-981-15-4132-2
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https://doi.org/10.1007/978-3-030-89304-0lytic site and the active oxygen species involved in the catalysis and the overall structure of the protein and its dynamics have been investigated. sMMO has been extensively studied, as it is relatively stable under non-biological conditions. In this chapter, the coordination structure of the iron
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https://doi.org/10.1007/978-3-030-89304-0crucial, but results in a shortage of nicotinamide adenine dinucleotide (NADH), which is required as a cellular energy source for the synthesis of various organic compounds required for the metabolism and the replication of the bacterial cells, as well as the hydroxylation of methane. Therefore, bot
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Anandan Das,Shubhadeep Roychoudhury sites and the reaction mechanism have been investigated. Reactive oxygen ions, such as O. or O., are required for the activation of methane on catalysts. However, no feasible processes have resulted, despite a reasonable understanding of the elementary reactions in the OCM reaction. The non-oxidati
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Anandan Das,Shubhadeep Roychoudhury the active molybdenum species in the MDA reaction are also discussed. In the initial stage, various molybdenum species, such as MoC. species, take part in the first C–C bond formation to produce C.H. and C.H. from CH.. Subsequently, acidic Brønsted acid sites (acidic protons) catalyze the conversio
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