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On the structure sensitivity of and CO coverage effects on formic acid decomposition on Pd surfaces

机译:论PD表面上甲酸分解的结构敏感性和共同覆盖作用

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摘要

Using density functional theory calculations, the Pd-catalyzed vapor-phase formic acid decomposition was studied, with a focus on the structure sensitivity and CO coverage effects. A comprehensive reaction network was developed on both the (111) and (100) facets of Pd, at CO coverages of 0 and 5/9 monolayer (ML). Pd(100) was determined to be more reactive than Pd(111) at both CO coverages. The introduction of 5/9 ML CO decreased the activity of both facets significantly, due to destabilization of the surface intermediates and transition states on the CO-decorated surfaces. Three reaction pathways were explored on the clean surfaces: the formate (HCOO) pathway, the carboxyl (COOH) pathway leading to the formation of CO2, and the COOH pathway leading to the formation of CO (COOH - CO). Based on the DFT-derived energetics alone, it appears that all three pathways contribute to the reaction on clean Pd, whereas the presence of 5/9 ML of CO inhibits the HCOO pathway on both facets and favors the COOH - CO pathway on the (111) facet, but the COOH - CO2 one on the (100) facet. Moreover, at high CO coverages, alternative spectator CO-assisted adsorbate decomposition pathways were discovered, which could potentially play a role in formic acid decomposition on Pd catalysts under realistic reaction conditions.
机译:使用密度函数理论计算,研究了PD催化的气相甲酸分解,重点关注结构敏感性和CO覆盖效果。在Pd的(111)和(100)个刻面上,在0和5/9单层(ml)的CO覆盖范围内开发了综合反应网络。在两个CO覆盖范围内测定Pd(100)比Pd(111)更反应。由于表面中间体的不稳定和过渡状态在合作表面上的变得稳定,引入5/9mL CO的引入显着降低了两条小的活动。在清洁表面上探索了三种反应途径:甲酸酯(HCOO)途径,羧基(COOH)途径,导致CO 2的形成,以及导致CO(COOH - > CO)形成的COOH途径。仅基于DFT衍生的能量学单独,似乎所有三个途径都有助于对清洁PD的反应,而5/9ml CO的存在抑制了两个小平面上的HCOO途径,并有利于COOH - > CO通路(111)方面,但COOH - & CO2在(100)方面上。此外,在高CO覆盖范围内,发现了替代方向共同辅助吸附物分解途径,这可能在逼真的反应条件下对Pd催化剂的甲酸分解中的作用发挥作用。

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  • 来源
    《Surface Science》 |2021年第7期|121846.1-121846.17|共17页
  • 作者单位

    Univ Wisconsin Madison Dept Chem & Biol Engn Madison WI 53706 USA|Chem & Chem Engn Guangdong Lab Shantou 515041 Guangdong Peoples R China;

    Univ Wisconsin Madison Dept Chem & Biol Engn Madison WI 53706 USA|Lehigh Univ Dept Chem & Biomol Engn Bethlehem PA 18015 USA;

    Univ Wisconsin Madison Dept Chem & Biol Engn Madison WI 53706 USA|Carnegie Mellon Univ Dept Chem Pittsburgh PA 15213 USA;

    Univ Wisconsin Madison Dept Chem & Biol Engn Madison WI 53706 USA;

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