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用于合成预硫化MoS/AlO催化剂的新型浸渍沉积法及其在加氢脱硫中的应用。

Novel Impregnation-Deposition Method to Synthesize a Presulfided MoS/AlO Catalyst and Its Application in Hydrodesulfurization.

作者信息

Li Xuehui, Wang Xuefeng, Ning Jing, Wei Hongtao, Hao Long

机构信息

College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, No.700 Changcheng Road, Qingdao266109, China.

出版信息

ACS Omega. 2023 Jan 9;8(2):2596-2606. doi: 10.1021/acsomega.2c07123. eCollection 2023 Jan 17.

Abstract

A novel impregnation-deposition method was applied to prepare presulfided MoS/AlO catalysts with large surface areas for the application of hydrodesulfurization (HDS). The synthesized catalysts were characterized systematically, and their catalytic performances were evaluated by the HDS of dibenzothiophene (DBT). It is found that the impregnation-deposition method improves the surface area of the synthesized catalysts by eliminating the micropores of the alumina support and adding mesostructured MoS particles within the support. Moreover, this method enhances the reducibility of the sulfided Mo species, as characterized by temperature-programed reduction (TPR) and X-ray photoelectron spectroscopy. Compared to the impregnation method, the impregnation-deposition method leads to the formation of more active sites as proved by TPR and CO-Fourier-transform infrared analyses. Hence, the reaction conversion rates and the hydrogenation/direct-desulfurization ratios of the DBT on the catalysts synthesized by the impregnation-deposition method are 1.3 times and 1.5 times as high as those of the catalysts made by the conventional impregnation method, respectively.

摘要

采用一种新型的浸渍-沉积方法制备了具有大表面积的预硫化MoS/AlO催化剂,用于加氢脱硫(HDS)应用。对合成的催化剂进行了系统表征,并通过二苯并噻吩(DBT)的加氢脱硫反应评估了其催化性能。研究发现,浸渍-沉积方法通过消除氧化铝载体的微孔并在载体内部添加介孔结构的MoS颗粒,提高了合成催化剂的表面积。此外,通过程序升温还原(TPR)和X射线光电子能谱表征,该方法增强了硫化态Mo物种的还原性。与浸渍法相比,TPR和CO-傅里叶变换红外分析证明,浸渍-沉积法导致形成更多的活性位点。因此,浸渍-沉积法合成的催化剂上DBT的反应转化率和加氢/直接脱硫比分别是传统浸渍法制备的催化剂的1.3倍和1.5倍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26ca/9850723/af68af12b77b/ao2c07123_0003.jpg

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