4.6 Article

Study on the Performance of Ni-MoS2 Catalysts with Different MoS2 Structures for Dibenzothiophene Hydrodesulfurization

Journal

ACS OMEGA
Volume 8, Issue 44, Pages 41182-41193

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsomega.3c04059

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This study investigates the structure and catalytic performance of Ni-MoS2 catalysts for hydrodesulfurization (HDS) using hydrothermal treatment and calcination processes. The effects of hydrothermal treatment temperature and calcination temperature on catalyst structures were analyzed using various characterization techniques. The results showed that an appropriate hydrothermal treatment temperature could lead to catalysts with desirable desulfurization activity.
Hydrodesulfurization (HDS) is an important process for the production of clean fuel oil, and the development of a new environmentally friendly, low-cost sulfided catalyst is key research in hydrogenation technology. Herein, commercial bulk MoS2 and NiCO3 center dot 2NiOH(2)center dot 4H(2)O were first hydrothermally treated and then calcined in a H-2 or N-2 atmosphere to obtain Ni-MoS2 HDS catalysts with different structures. Mechanisms of hydrothermal treatment and calcination on Ni-MoS2 catalyst structures were investigated by X-ray diffraction (XRD), high-resolution transmission electron microscopy (HRTEM), electron paramagnetic resonance (EPR), and X-ray photoelectron spectroscopy (XPS). The catalytic performance of Ni-MoS2 catalysts was evaluated by the HDS reaction of dibenzothiophene (DBT) on a fixed bed reactor, and the structure-activity relationship between the structures of the Ni-MoS2 catalyst and the HDS of DBT was discussed. The results showed that the lateral size, the number of stacked layers, and the S/Mo atomic ratio of MoS2 in the catalyst decreased and then increased with the increase of the hydrothermal treatment temperature, reaching the minimum at the hydrothermal treatment temperature of 150 degrees C, i.e., the lateral size of MoS2 in the catalyst was 20-36 nm, the number of stacked layers of MoS2 was 5.4, and the S/Mo ratio in the catalyst was 1.80. In addition, the effects of different calcination temperatures and calcination atmospheres on the catalyst structures were investigated at the optimum hydrothermal treatment temperature. The Ni-Mo-S and NixSy ratios of the catalysts increased and then decreased with the increasing calcination temperature under a H-2 atmosphere, reaching a maximum at a calcination temperature of 400 degrees C. Therefore, DBT exhibited the best HDS activity over the H-NiMo-150-400 catalyst, and the desulfurization rate of DBT reached 94.7% at a reaction temperature of 320 degrees C.

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