Effect of a bimetal Mn/Zn catalyst supported on activated carbon for selective oxidation of ethyl lactate to ethyl pyruvate

IF 3.1 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
G. Madhanagopal , K. Premalatha , P.N. Poovizhi , V. Sumithra , S. Mahalingam , L. Guganathan , S. Sivakumar , A. Subramani , P. Tamizhdurai
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Abstract

This study investigated the conversion of ethyl lactate to ethyl pyruvate using a bar reactor. A novel heterogeneous catalyst, AC/Mn/Zn (manganese and zinc supported on mesoporous activated carbon), was synthesized using a cost-effective and efficient approach that prioritizes affordability and accessibility. This approach utilizes readily available starting materials and a streamlined process, making the AC/Mn/Zn catalyst commercially attractive for large-scale production. Furthermore, the synthesis minimizes the use of harmful chemicals and generates minimal waste, contributing to an environmentally friendly process that aligns with growing demands for sustainable production methods. Additionally, the straightforward procedures employed allow for simple and replicable catalyst production, ensuring consistent quality control. Following synthesis, various characterization techniques (XRD, TPD, BET, FT-IR, HR-SEM, HR-TEM) confirmed the successful formation of the AC/Mn/Zn catalyst with desired properties. The AC/Mn/Zn catalyst possessed a unique combination of Brønsted and Lewis acid sites, making it ideal for the target reaction. Reaction parameters were optimized, with a temperature of 90 °C, WHSV of 1.0 h−1, atmospheric pressure, and air as the oxidant being employed. The AC/Mn/Zn catalyst exhibited exceptional performance, achieving a remarkable 91 % conversion and 90 % selectivity for ethyl pyruvate, surpassing other investigated catalysts. This success is attributed to the well-designed structure incorporating zinc into the AC-supported manganese. Interestingly, the formation of additional acidic compounds beyond the desired reaction time was observed, suggesting potential side reactions. Further investigation into these side reactions is necessary for complete optimization. The AC/Mn/Zn catalyst offers a compelling combination of high performance, a cost-effective and environmentally friendly synthesis method, and straightforward production procedures. These factors highlight its potential as a promising candidate for industrial ethyl pyruvate production.

Abstract Image

负载双金属Mn/Zn催化剂对活性炭选择性氧化乳酸乙酯制丙酮酸乙酯的影响
研究了用棒状反应器将乳酸乙酯转化为丙酮酸乙酯。一种新型的多相催化剂AC/Mn/Zn(介孔活性炭负载的锰和锌),采用经济高效的方法合成,优先考虑可负担性和可及性。这种方法利用现成的起始材料和简化的工艺,使AC/Mn/Zn催化剂具有大规模生产的商业吸引力。此外,这种合成方法最大限度地减少了有害化学品的使用,产生的废物最少,有助于形成一种环境友好的过程,符合对可持续生产方法日益增长的需求。此外,所采用的直接程序允许简单和可复制的催化剂生产,确保一致的质量控制。合成后,通过XRD、TPD、BET、FT-IR、HR-SEM、HR-TEM等多种表征技术,证实了AC/Mn/Zn催化剂的合成成功。AC/Mn/Zn催化剂具有Brønsted和Lewis酸位点的独特组合,使其成为目标反应的理想选择。优化了反应参数,温度为90℃,WHSV为1.0 h−1,常压,空气为氧化剂。AC/Mn/Zn催化剂表现出优异的催化性能,对丙酮酸乙酯的转化率达到91%,选择性达到90%,优于其他催化剂。这一成功归功于设计良好的结构,将锌结合到交流负载的锰中。有趣的是,在预期的反应时间之外,观察到额外的酸性化合物的形成,这表明潜在的副反应。进一步研究这些副反应是完全优化的必要条件。AC/Mn/Zn催化剂具有高性能、经济高效、环保的合成方法和简单的生产流程。这些因素突出了它作为工业丙酮酸乙酯生产的有前途的候选物的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Carbon Trends
Carbon Trends Materials Science-Materials Science (miscellaneous)
CiteScore
4.60
自引率
0.00%
发文量
88
审稿时长
77 days
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