Gümüşlü Gür Gamze, Atik Özge
Department of Chemical Engineering, Faculty of Chemical and Metallurgical Engineering, İstanbul Technical University, İstanbul, Turkey.
İTU Synthetic Fuels and Chemicals Technology Center, İstanbul Technical University, İstanbul, Turkey.
Turk J Chem. 2022 Apr 28;46(4):941-955. doi: 10.55730/1300-0527.3406. eCollection 2022.
Direct production of light olefins, building blocks of chemical industry, can be attained by developing efficient catalysts for Fischer-Tropsch synthesis (FTS). The nature of FTS complicates the catalyst development process as the product distribution is affected by the components and the preparation methods of the catalyst. In this work, high-throughput (HT) methodology is employed to overcome this problem by testing many different catalyst formulations. Fast performance screening of 40 different α-AlO supported Fe-Mn based catalysts promoted with Cu, K and Ni, using different impregnation agents, was performed in a HT test system at atmospheric pressure. Promising catalyst candidates identified by HT analysis were further subjected to high pressure FTS in a conventional system. Results indicate that coupled with Mn, Ni promoted CH production, Cu increased CO conversion, K enhanced olefin selectivity and olefin-to-paraffin ratio. In double promotion of Cu and K, Cu balanced the activity and stability loss due to K, while K enhanced olefin selectivity. -pentane aided impregnation slightly enhanced catalytic performance. Differences observed in catalytic performance were regarded as related to the structural changes caused by promoter and impregnation type based on characterization data obtained by H-TPR, XRD, SEM, EDS mapping and N adsorption.
通过开发用于费托合成(FTS)的高效催化剂,可以直接生产作为化学工业基石的轻质烯烃。由于产物分布受催化剂的组成和制备方法影响,费托合成的性质使催化剂开发过程变得复杂。在这项工作中,采用高通量(HT)方法,通过测试许多不同的催化剂配方来克服这一问题。在常压下的高通量测试系统中,对40种不同的以α -AlO为载体、用Cu、K和Ni促进的Fe-Mn基催化剂进行了快速性能筛选,这些催化剂使用了不同的浸渍剂。通过高通量分析确定的有前景的催化剂候选物在传统系统中进一步进行高压费托合成测试。结果表明,与Mn耦合时,Ni促进CH生成,Cu提高CO转化率,K增强烯烃选择性和烯烃与石蜡的比例。Cu和K的双重促进作用中,Cu平衡了因K导致的活性和稳定性损失,而K增强了烯烃选择性。戊烷辅助浸渍略微提高了催化性能。基于通过H-TPR、XRD、SEM、EDS映射和N吸附获得的表征数据,观察到的催化性能差异被认为与促进剂和浸渍类型引起的结构变化有关。