The Fischer–Tropsch to olefins (FTO) reaction over Co 2 C catalysts is structure-sensitive, as the catalytic performance is strongly influenced by the surface structure of the active phase. The exposed facets determine the surface structure, and it remains a great challenge to precisely control the particle morphology of the FTO active phase. In this study, the controlling effect of the Mn promoter on the final morphology of the Co 2 C nanoparticles for the FTO reaction was investigated. The unpromoted catalyst and several promoted catalysts with Ce, La, and Al were also studied for comparison. For the Mn-promoted catalysts, the combination method of the Co and Mn components plays a crucial role in the final morphology of Co 2 C and thus the catalytic performance. For the CoMn catalyst prepared by coprecipitation, Co 2 C nanoprisms with specifically exposed facets of (101) and (020) can be obtained, which exhibit a promising FTO catalytic performance with high C 2–4 = selectivity, low methane selectivity, and high activity under mild reaction conditions. However, for the Mn/Co catalyst prepared via impregnation, Co 2 C nanospheres are formed, which exhibit high methane selectivity, low C 2–4 = selectivity, and low activity. For the unpromoted catalyst and the catalysts promoted by Ce and La, Co 2 C nanospheres are also obtained, with catalytic performance similar to that of the Mn/Co catalyst prepared via impregnation. Due to the high stability of the Co 2 AlO x composite oxide, no Co 2 C phase can be formed for the catalyst promoted by Al.
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Li et al. (2017) studied this question.
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