Catalytic Performance and Kinetic Models on Zirconium Phosphate Modified Ru/Co/SiO 2 Fischer-Tropsch Catalyst

Bal Sang Lee, In Hyeok Jang, Jong Wook Bae, Soong Ho Um, Pil J. Yoo, Myung June Park, Yong Chul Lee, Ki Won Jun

Research output: Contribution to journalArticlepeer-review

14 Scopus citations

Abstract

The present paper represents the promising ways to improve catalytic performance by introducing zirconium phosphate (ZP) on Ru/Co/SiO 2 catalysts and the related kinetic models using the optimized Fischer-Tropsch synthesis (FTS) catalyst. A lot of works has been reported using cobalt-based catalyst for FTS reaction, and many authors have continuously tried to find out highly efficient FTS catalyst by modifying support as well as by introducing promoters. Silica is one of the excellent candidates as catalytic supports, and the present works intensively represents how to modify SiO 2 support for a high catalytic performance by using ZP species. The effect of ZP-modification of SiO 2 support with respect to cobalt aggregation and catalytic deactivation was mainly investigated for FTS reaction. The surface modification at P/(Zr + P) molar ratio between 0. 029 and 0. 134, enhanced the spatial confinement effect of cobalt clusters, and resulted in high catalytic stability with the help of well-dispersed ZP particle formation. The enhanced catalytic performance, in terms of CO conversion, C 5+ selectivity and catalytic stability, is mainly attributed to the suppressed aggregation, a homogeneous distribution of cobalt clusters with a proper size and a low mobility of cobalt clusters at an optimum molar ratio of P/(Zr + P) because of the formation of thermally stable ZP particles. The kinetic parameters and rate equations on the optimized catalyst are also derived in terms of CO conversion and product distribution.

Original languageEnglish
Pages (from-to)121-137
Number of pages17
JournalCatalysis Surveys from Asia
Volume16
Issue number3
DOIs
StatePublished - Sep 2012

Keywords

  • Aggregation
  • Cobalt
  • Deactivation
  • Fischer-Tropsch synthesis
  • Kinetic parameters
  • Rate equations
  • SiO
  • Spatial confinement
  • Zirconium phosphate

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