增强二氧化碳还原的包晶氧化物催化剂:用纳米镍和铜粒子对表面进行刺绣装饰

Catalysts Pub Date : 2024-05-10 DOI:10.3390/catal14050313
Andrea Osti, Lorenzo Rizzato, Jonathan Cavazzani, Ambra Meneghello, Antonella Glisenti
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摘要

将二氧化碳还原成有价值的燃料是向更可持续的能源系统过渡的关键一步。透辉石氧化物具有很高的组成和性质可调节性,无论是单独使用还是作为其他活性金属的支撑基质,都是很有前途的催化剂。在本研究中,通过柠檬酸引发的湿浸渍法,用 Ni、Cu 或 Ni + Cu 对 A 盐缺失的 La0.9FeO3 包晶进行了表面装饰。在通过 XRD、N2 物理吸附、H2-TPR、SEM-EDX、HAADF STEM-EDX 制图、CO2-TPD 和 XPS 进行广泛表征后,制备的粉末在稀 H2 下进行还原,生成金属纳米颗粒 (NP)。然后对制备的催化剂在 CO2/H2 = 1/4 混合物中进行二氧化碳还原评估。在过氧化物载体上沉积 Ni 或 Cu NPs 能显著提高 CO2 的转化率,在 500 °C 时转化率达到 50%,尽管最终产物只有 CO。值得注意的是,以 Ni-Cu 共沉积为特征的催化剂在中间温度范围内表现更佳,在 350 °C 左右的 CH4 生产中表现出较高的选择性。对于后一种催化剂,H2-TPR 和 CO2-TPD 实验证明了金属-支撑相互作用的协同效应以及更好的纳米颗粒分散性。所有催化剂,尤其是镍铜共沉积催化剂,在 20 小时的时间跨度内都表现出了卓越的稳定性。
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Perovskite Oxide Catalysts for Enhanced CO2 Reduction: Embroidering Surface Decoration with Ni and Cu Nanoparticles
The imperative reduction of carbon dioxide into valuable fuels stands as a crucial step in the transition towards a more sustainable energy system. Perovskite oxides, with their high compositional and property adjustability, emerge as promising catalysts for this purpose, whether employed independently or as a supporting matrix for other active metals. In this study, an A-site-deficient La0.9FeO3 perovskite underwent surface decoration with Ni, Cu or Ni + Cu via a citric acid-templated wet impregnation method. Following extensive characterization through XRD, N2 physisorption, H2-TPR, SEM-EDX, HAADF STEM-EDX mapping, CO2-TPD and XPS, the prepared powders underwent reduction under diluted H2 to yield metallic nanoparticles (NPs). The prepared catalysts were then evaluated for CO2 reduction in a CO2/H2 = 1/4 mixture. The deposition of Ni or Cu NPs on the perovskite support significantly enhanced the conversion of CO2, achieving a 50% conversion rate at 500 °C, albeit resulting in only CO as the final product. Notably, the catalyst featuring Ni-Cu co-deposition outperformed in the intermediate temperature range, exhibiting high selectivity for CH4 production around 350 °C. For this latter catalyst, a synergistic effect of the metal–support interaction was evidenced by H2-TPR and CO2-TPD experiments as well as a better nanoparticle dispersion. A remarkable stability in a 20 h time-span was also demonstrated for all catalysts, especially the one with Ni-Cu co-deposition.
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