Highly Efficient PtSn/Al2O3 and PtSnZnCa/Al2O3 Catalysts for Ethane Dehydrogenation: Influence of Catalyst Pretreatment Atmosphere

Catalysts Pub Date : 2024-05-09 DOI:10.3390/catal14050312
Seetharamulu Podila, A. Al-zahrani, M. Daous, Hisham Alhumade
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Abstract

Increased demand for ethylene has motivated direct ethane dehydrogenation over Pt-based catalysts. PtSn/γ-Al2O3 and PtSnZnCa/γ-Al2O3 catalysts were investigated with the aim of understanding the effect of the pretreatment environment on the state of dispersed Pt for ethane dehydrogenation. The catalysts were prepared by the impregnation method and pretreated in different environments like static air (SA), flowing air (FA), and nitrogen (N2) atmospheres. A comprehensive characterization of the catalysts was performed using Brunauer–Emmett–Teller (BET), X-ray diffraction (XRD), Temperature-Programmed Reduction (TPR), NH3 Temperature-Programmed Desorption (NH3-TPD), X-ray photoelectron spectroscopy (XPS), and Transmission Electron Microscopy (TEM) techniques. The results reveal that the PtSn on Al2O3 catalyst pretreated in the static air environment (PtSn-SA) exhibits 21% ethylene yield with 95% selectivity at 625 °C. XPS analysis found more platinum and tin on the catalyst surface after static air treatment. The overall acidity of the catalysts decreased after thermal treatment in static air. Elemental mapping demonstrated that Pt agglomeration was pronounced in catalysts calcined under flowing air and nitrogen. These factors are responsible for the enhanced activity of the PtSn-SA catalyst compared to the other catalysts. The addition of Zn and Ca to the PtSn catalysts increases the yield of the catalyst calcined in static air (PtSnZnCa-SA). The PtSnZnCa-SA catalyst showed the highest ethylene yield of 27% with 99% selectivity and highly stable activity at 625 °C for 10 h.
用于乙烷脱氢的高效 PtSn/Al2O3 和 PtSnZnCa/Al2O3 催化剂:催化剂预处理气氛的影响
乙烯需求的增加促使人们使用铂基催化剂直接进行乙烷脱氢。研究了 PtSn/γ-Al2O3 和 PtSnZnCa/γ-Al2O3 催化剂,旨在了解预处理环境对乙烷脱氢过程中铂分散状态的影响。催化剂采用浸渍法制备,并在静态空气 (SA)、流动空气 (FA) 和氮气 (N2) 等不同环境中进行预处理。使用布鲁纳-埃美特-泰勒(BET)、X 射线衍射(XRD)、温度编程还原(TPR)、NH3 温度编程解吸(NH3-TPD)、X 射线光电子能谱(XPS)和透射电子显微镜(TEM)技术对催化剂进行了全面表征。结果表明,在静态空气环境中预处理的 Al2O3 上的 PtSn 催化剂(PtSn-SA)在 625 °C 时乙烯产率为 21%,选择性为 95%。XPS 分析发现,经过静态空气处理后,催化剂表面有更多的铂和锡。在静态空气中进行热处理后,催化剂的整体酸度降低。元素图谱显示,在流动空气和氮气中煅烧的催化剂中铂团聚现象明显。与其他催化剂相比,这些因素是 PtSn-SA 催化剂活性增强的原因。在 PtSn 催化剂中添加 Zn 和 Ca 可以提高在静态空气中煅烧的催化剂(PtSnZnCa-SA)的产率。PtSnZnCa-SA 催化剂的乙烯产率最高,达到 27%,选择性为 99%,在 625 °C 煅烧 10 小时后活性高度稳定。
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