Direct Injection of Hydrogen Peroxide for Selective Homogeneous Conversion of Methane into Higher Hydrocarbons

IF 3.8 3区 工程技术 Q2 ENGINEERING, CHEMICAL Industrial & Engineering Chemistry Research Pub Date : 2024-06-18 DOI:10.1021/acs.iecr.4c00997
Shintaro Yoshida, William J. Movick, Keisuke Obata, S. Mani Sarathy and Kazuhiro Takanabe*, 
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Abstract

The impact of direct H2O2 injection on the selective CH4 coupling reaction at high temperatures was investigated both experimentally and by kinetic modeling to provide insight into the reaction mechanism of the catalytic oxidative coupling of methane (OCM). H2O2 injection transforms CH4 into C2H6 and C2H4 at high selectivity, confirming the effectiveness of the involvement of H2O2 by generating OH radicals in OCM. For carbon oxides, there was only CO formation without CO2 at CH4 conversions at or below 10%, as expected from the pure contribution of the gas phase. These results were consistent with simulation results using kinetic modeling of gas-phase elementary reactions. Rate of production (ROP) analysis suggests that OH radicals formed from H2O2 decomposition were responsible for the high selectivity toward C2 products. The major loss of C2 selectivity and CH4 conversion is due to HO2 radicals, a secondary product in H2O2 decomposition. The HO2 radicals were found to both oxidize CH3 radicals and neutralize OH radicals. The kinetic model consistently overpredicted the CH4 conversion and C2 selectivity over the experimental results, which can be attributed to the radical quenching and overoxidation reaction on the surface of the quartz tube reactor. The findings in this work help create a better understanding of the requirements of selective C2 formation under OCM conditions.

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直接注入过氧化氢,将甲烷选择性地均质转化为高级碳氢化合物
通过实验和动力学模型研究了直接注入 H2O2 对高温下选择性 CH4 偶联反应的影响,从而深入了解甲烷催化氧化偶联(OCM)的反应机理。注入的 H2O2 以高选择性将 CH4 转化为 C2H6 和 C2H4,证实了 H2O2 在 OCM 中通过产生 OH 自由基参与反应的有效性。就碳氧化物而言,当 CH4 转化率达到或低于 10% 时,只有 CO 生成,而没有 CO2 生成,这是气相纯贡献的预期结果。这些结果与气相基本反应动力学模型的模拟结果一致。生产率(ROP)分析表明,H2O2 分解形成的 OH 自由基是 C2 产物高选择性的原因。C2 选择性和 CH4 转化率的主要损失是 H2O2 分解过程中的次级产物 HO2 自由基造成的。研究发现,HO2 自由基既能氧化 CH3 自由基,又能中和 OH 自由基。动力学模型对 CH4 转化率和 C2 选择性的预测一直高于实验结果,这可归因于石英管反应器表面的自由基淬灭和过氧化反应。这项工作的发现有助于更好地理解在 OCM 条件下选择性 C2 生成的要求。
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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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