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用于逆水煤气变换反应的催化氧化锰纳米结构。

Catalytic manganese oxide nanostructures for the reverse water gas shift reaction.

机构信息

Department of Chemical and Environmental Engineering, Yale University, New Haven, CT 06520-8286, USA.

Energy Sciences Institute, 810 West Campus Drive, Yale University, West Haven, CT 06516, USA.

出版信息

Nanoscale. 2019 Sep 21;11(35):16677-16688. doi: 10.1039/c9nr06078b. Epub 2019 Aug 28.

Abstract

Understanding the fundamental structure-property relationships of nanomaterials is critical for many catalytic applications as they comprise of the catalyst designing principles. Here, we develop efficient synthetic methods to prepare various MnO structures and investigate their catalytic performance as applied to the reverse Water Gas Shift (rWGS) reaction. We show that the support-free MnO derived from MnO 1D, 2D and 3D nanostructures are highly selective (100% CO to CO), thermally stable catalysts (850 °C) and differently effective in the rWGS. Up to 50% conversion is observed, with a H/CO feed-in ratio of 1 : 1. From both experiments and DFT calculations, we find the MnO morphology plays a critical role in governing the catalytic behaviors since it affects the predominant facets exposed under reaction conditions as well as the intercalation of K as a structural building block, substantially affecting the gas-solid interactions. The relative adsorption energy of reactant (CO) and product (CO), ΔE = E(CO) -E(CO), is found to correlate linearly with the catalytic activity, implying a structure-function relationship. The strong correlation found between E(CO) -E(CO), or more generally, E(R) -E(P), and catalytic activity makes ΔE a useful descriptor for characterization of efficient catalysts involving gas-solid interactions beyond the rWGS.

摘要

了解纳米材料的基本结构-性能关系对于许多催化应用至关重要,因为它们构成了催化剂设计原则。在这里,我们开发了有效的合成方法来制备各种 MnO 结构,并研究了它们在反向水气变换 (rWGS) 反应中的催化性能。我们表明,由 MnO 1D、2D 和 3D 纳米结构衍生的无载体 MnO 是高选择性(100% CO 至 CO)、热稳定的催化剂(850°C),并且在 rWGS 中具有不同的效果。在 H/CO 进料比为 1:1 时,观察到高达 50%的转化率。通过实验和 DFT 计算,我们发现 MnO 形态在控制催化行为方面起着关键作用,因为它影响反应条件下暴露的主要晶面以及 K 的嵌入作为结构构建块,这极大地影响了气-固相互作用。反应物(CO)和产物(CO)的相对吸附能,ΔE = E(CO) - E(CO),与催化活性呈线性相关,这意味着存在结构-功能关系。E(CO) - E(CO)或更一般地说,E(R) - E(P)与催化活性之间的强相关性使得ΔE 成为描述涉及气-固相互作用的高效催化剂的有用描述符,超出了 rWGS 的范围。

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