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JOURNALS // Nanosystems: Physics, Chemistry, Mathematics // Archive

Nanosystems: Physics, Chemistry, Mathematics, 2024 Volume 15, Issue 6, Pages 837–854 (Mi nano1329)

CHEMISTRY AND MATERIAL SCIENCE

Granular Ni–Mo–W bulk hydrotreating catalyst: the effects from precursor calcination

Ksenia A. Nadeina, Yuliya V. Vatutina, Polina P. Mukhacheva, Sergey V. Budukva, Irina G. Danilova, Vera P. Pakharukova, Evgeniy Yu. Gerasimov, Maxim A. Panafidin, Oleg V. Klimov

Boreskov Institute of Catalysis SB RAS, Pr. Lavrentieva 5, 630090 Novosibirsk, Russia

Abstract: This paper presents a study on the effect of the Ni–Mo–W precursor calcination (300, 450 and 500$^\circ$C) on properties of granulated bulk Ni–Mo–W catalysts. The Ni–Mo–W precursor and bulk catalysts were studied by XRD, nitrogen adsorption-desorption method, CHNS analysis, thermal analysis, Raman spectroscopy, UV-Vis DR spectroscopy, HRTEM and XPS. It is shown that the increase in calcination temperature of the precursor to 500$^\circ$C leads to stepwise decomposition of citric acid, transformation of active metals and re-structurization of the samples. Active metals in sulfide catalysts are present in the bulk mixed or individual sulfides and interact with alumina binder to form “NiMoS-like” sulfide phase. Increased crystallinity of the precursor results in the enlargement of bulk nickel particles, capsulation of Mo and W and their rounding by Ni atoms. Catalysts testing in hydrotreatment of SRVGO demonstrates that the best choice of temperature regimes is 300$^\circ$C for the precursor.

Keywords: bulk catalyst, NiMoW, calcination, HDS, HDN.

Received: 29.07.2024
Revised: 02.10.2024
Accepted: 07.11.2024

Language: English

DOI: 10.17586/2220-8054-2024-15-6-837-854



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