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Confinement Effects on Carbon Dioxide Methanation: A Novel Mechanism for Abiotic Methane Formation

机译:限制甲烷甲烷化的作用:一种非生物甲烷形成的新机制

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摘要

An important scientific debate focuses on the possibility of abiotic synthesis of hydrocarbons during oceanic crust-seawater interactions. While on-site measurements near hydrothermal vents support this possibility, laboratory studies have provided data that are in some cases contradictory. At conditions relevant for sub-surface environments it has been shown that classic thermodynamics favour the production of CO2 from CH4, while abiotic methane synthesis would require the opposite. However, confinement effects are known to alter reaction equilibria. This report shows that indeed thermodynamic equilibrium can be shifted towards methane production, suggesting that thermal hydrocarbon synthesis near hydrothermal vents and deeper in the magma-hydrothermal system is possible. We report reactive ensemble Monte Carlo simulations for the CO2 methanation reaction. We compare the predicted equilibrium composition in the bulk gaseous phase to that expected in the presence of confinement. In the bulk phase we obtain excellent agreement with classic thermodynamic expectations. When the reactants can exchange between bulk and a confined phase our results show strong dependency of the reaction equilibrium conversions, X>C>O2, on nanopore size, nanopore chemistry, and nanopore morphology. Some physical conditions that could shift significantly the equilibrium composition of the reactive system with respect to bulk observations are discussed.
机译:一个重要的科学辩论集中在大洋地壳与海水相互作用过程中非生物合成碳氢化合物的可能性。尽管在热液喷口附近进行现场测量支持了这种可能性,但实验室研究提供的数据在某些情况下是矛盾的。研究表明,在与地下环境有关的条件下,经典的热力学有利于由CH4产生CO2,而非生物甲烷的合成则需要相反的条件。但是,限制作用会改变反应平衡。该报告表明,确实可以将热力学平衡转向甲烷的生产,这表明在热液喷口附近和岩浆热液系统中更深的热烃合成是可能的。我们报告了CO2甲烷化反应的反应性集成蒙特卡罗模拟。我们将在整体气相中的预测平衡组成与在限制条件下的预期平衡组成进行了比较。在本体阶段,我们获得了与经典热力学期望值的出色一致性。当反应物可以在本体相和受限相之间交换时,我们的结果表明,反应平衡转化率X > C > O 2对纳米孔尺寸,纳米孔化学性质和纳米孔的依赖性很大形态学。讨论了一些物理条件,这些条件可能会显着改变反应系统相对于整体观测的平衡组成。

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