空间模式结构调节CO2还原级联催化动力学

IF 13.1 1区 化学 Q1 CHEMISTRY, PHYSICAL
Marisé García-Batlle, Pablo Fernandez, Colton J. Sheehan, Shi He, Thomas E. Mallouk, Gregory N. Parsons, James F. Cahoon and Rene Lopez*, 
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引用次数: 0

摘要

利用可再生电能的电化学二氧化碳减少有望将二氧化碳转化为燃料和化学品。化学/电化学反应和质量传递之间复杂的相互作用使得仅基于实验方法分析单个过程对电极性能的影响变得困难。在这里,我们开发了一个广义的稳态模拟来描述一个电极表面,其中顺序级联催化剂在周期性沟槽设计中形成图案。如果构造得当,这种沟槽的几何形状可以产生更高的净电流密度,用于二氧化碳还原(CO2R)级联反应。我们使用真实的实验反应动力学来研究沟槽几何形状在质量传输、局部微环境和模型CO2R级联反应选择性中的作用。该模型考虑了准平衡状态下碳酸氢盐种类的局部浓度梯度和基于浓度依赖的Butler-Volmer动力学的催化表面反应。我们的研究结果表明,改变活性位点的空间分布对促进活性位点之间的有效质量传递、调节级联反应的选择性和提高所需级联产物的产率具有重要作用。此外,我们观察到这种沟槽的几何形状通过影响局部pH值显著改变了级联反应速率,这可能导致有效的水相CO2的无意耗尽,从而限制了CO2R级联动力学,并适度抑制了析氢反应(HER)。结果突出了质量输运,pH值和反应动力学之间的权衡,只有在考虑电极表面所有过程的耦合物理时才会变得明显。因此,该模型可以作为构建更具选择性和效率的CO2R级联催化模式架构的主要工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spatially Patterned Architectures to Modulate CO2 Reduction Cascade Catalysis Kinetics

Spatially Patterned Architectures to Modulate CO2 Reduction Cascade Catalysis Kinetics

Electrochemical CO2 reduction using renewable sources of electrical energy holds promise for converting CO2 into fuels and chemicals. The complex interactions among chemical/electrochemical reactions and mass transport make it difficult to analyze the effect of an individual process on electrode performance based only on experimental methods. Here, we developed a generalized steady-state simulation to describe an electrode surface in which sequential cascade catalysts are patterned in a periodic trench design. If appropriately constructed, this trench geometry is hypothesized to be able to yield a higher net current density for a CO2 reduction (CO2R) cascade reaction. We have used realistic experimental reaction kinetics to investigate the role of trench geometry in mass transport, local microenvironments, and selectivity for a model CO2R cascade reaction. The model considers local concentration gradients of bicarbonate species at quasi-equilibrium and catalytic surface reactions based on concentration-dependent Butler–Volmer kinetics. Our results suggest that varying the spatial distribution of active sites plays a significant role in facilitating effective mass transport between active sites, modulating selectivity for the cascade reaction, and enhancing the yield of desirable cascade products. Moreover, we observe that this trench geometry significantly alters the cascade reaction rate by affecting the local pH, which can cause inadvertent depletion of available aqueous CO2 to limit the CO2R cascade kinetics and modest suppression of the hydrogen evolution reaction (HER). The results highlight the trade-offs between mass transport, pH, and reaction kinetics that become apparent only when considering the coupled physics of all processes at the electrode surface. This model can thus serve as a primary tool to build more selective and efficient patterned architectures for the CO2R cascade catalysis.

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来源期刊
ACS Catalysis
ACS Catalysis CHEMISTRY, PHYSICAL-
CiteScore
20.80
自引率
6.20%
发文量
1253
审稿时长
1.5 months
期刊介绍: ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels. The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.
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