Synthesis of p-Aminophenol from p-Nitrophenol Using CuO-Nanoleaf/g-Al2O3 Catalyst

Didik Sudarsono, E. Rismana, S. Slamet
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Abstract

The CuO-nanoleaf/g-Al2O3 catalyst was synthesized through wet chemical impregnation and had promising catalytic activity in reducing p-Nitrophenol (PNP) into p-Aminophenol (PAP). The synthesis was conducted in situ with Ethylene Glycol as a stabilizer agent of the CuO-nanoleaf structure and g-Al2O3 as catalyst support with high adsorption ability. Furthermore, the crystal phase, morphology, element composition, and specific surface area were investigated by X-Ray Diffraction (XRD), Field Emission Scanning Electron Microscopy (FESEM), and N2 adsorption-desorption, respectively. The XRD pattern showed the crystal phase of CuO and g-Al2O3 in the composite, and the morphology was successfully reported using FESEM. The increase in the specific surface area of the catalyst indicates that the CuO material was well composited in g-Al2O3. The catalyst has good activity in reducing PNP to PAP with 93.53% PNP conversion within 4 min. In addition, the reduction reaction of PNP with excess NaBH4 could be categorized as pseudo-first order kinetic with a constant rate of 0.6935 min−1 for CuO-nanoleaf/g-Al2O3 catalyst. The loading catalyst and temperature reaction effect on PNP conversion were also investigated. The results showed that 94.18% PNP conversion was obtained within only 2.5 min under the optimized conditions. Copyright © 2022 by Authors, Published by BCREC Group. This is an open access article under the CC BY-SA License (https://creativecommons.org/licenses/by-sa/4.0). 
CuO-Nanoleaf/g-Al2O3催化剂催化对硝基苯酚合成对氨基苯酚
采用湿浸渍法制备了cuo -纳米叶/g-Al2O3催化剂,该催化剂在将对硝基酚(PNP)还原为对氨基酚(PAP)方面具有良好的催化活性。以乙二醇作为cuo -纳米叶结构的稳定剂,g-Al2O3作为高吸附能力的催化剂载体,进行了原位合成。采用x射线衍射仪(XRD)、场发射扫描电镜(FESEM)和N2吸附-脱附仪分别对晶体的物相、形貌、元素组成和比表面积进行了研究。XRD图显示复合材料中存在CuO和g-Al2O3的晶相,FESEM成功报道了复合材料的形貌。催化剂比表面积的增加表明,在g-Al2O3中,CuO材料得到了很好的复合。该催化剂在4 min内可将PNP还原为PAP, PNP转化率为93.53%。此外,对于cuo - nanolaf /g-Al2O3催化剂,过量NaBH4对PNP的还原反应为准一级动力学反应,反应速率为0.6935 min−1。考察了负载催化剂和反应温度对PNP转化的影响。结果表明,在优化条件下,在2.5 min内,PNP转化率达到94.18%。版权所有©2022作者所有,BCREC集团出版。这是一篇基于CC BY-SA许可(https://creativecommons.org/licenses/by-sa/4.0)的开放获取文章。
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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