Examining the effect of manganese distribution on alcohol production in CoMn/TiO2 FTS catalysts†

Jay M. Pritchard, Matthew Lindley, Danial Farooq, Urvashi Vyas, Sarah J. Haigh, James Paterson, Mark Peacock and Andrew M. Beale
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Abstract

Mn-doped Co3O4 supported on TiO2 is a well-known Fischer–Tropsch Synthesis (FTS) catalyst. It has been shown that when the Mn doping exceeds 3 wt%, CO conversion drops and the product selectivity to alcohols and olefins increases dramatically. Here we examine the effect of the preparation method to determine how the proximity of the Mn in the as-prepared catalyst affects FTS performance. Three preparation procedures were examined: preparation of Mn doped Co(Mn)3O4 mixed oxides, surface doping of Co3O4 with Mn3O4 and a physical mixture of the two spinels. Characterisation studies including XRD, XPS and STEM-EDS, of the as-synthesised materials confirmed the successful preparation of spinel materials with crystallite sizes ∼20 nm. Surface enrichment of Mn on Co3O4 was seen in the as-prepared surface doped samples but not in the mixed oxide ones. STEM EDS studies revealed that after reduction Mn oxide had migrated to the surface in the mixed oxide samples similar to the surface doped samples. Subsequently, similar CO conversion and product selectivity was observed in both types of sample. However, unlike the surface doped and mixed oxide catalysts, the physically mixed oxide samples did not yield alcohols and olefins, although enhanced CO conversion was observed for the 3% physical mix. The results highlight the prevalence and importance of the effects of surface Mn doping on the Co speciation which leads to enhanced alcohol/olefin selectivity.

Abstract Image

CoMn/TiO2 FTS催化剂中锰分布对酒精产率的影响研究
负载在TiO2上的mn掺杂Co3O4是一种著名的费托合成(FTS)催化剂。结果表明,当Mn掺杂量超过3 wt%时,CO转化率下降,产物对醇类和烯烃的选择性显著提高。在这里,我们研究了制备方法的影响,以确定Mn在制备的催化剂中的接近度如何影响FTS性能。研究了三种制备工艺:Mn掺杂Co(Mn)3O4混合氧化物的制备、Co3O4表面掺杂Mn3O4和两种尖晶石的物理混合物。表征研究包括XRD, XPS和STEM-EDS,证实了成功制备的尖晶石材料,晶体尺寸为~ 20 nm。在制备的表面掺杂样品中,Mn在Co3O4表面富集,而在混合氧化物样品中则没有富集。STEM EDS研究表明,还原后的混合氧化物样品中Mn氧化物迁移到表面,与表面掺杂样品相似。随后,在两种类型的样品中观察到相似的CO转化率和产物选择性。然而,与表面掺杂和混合氧化物催化剂不同,物理混合氧化物样品不产生醇和烯烃,尽管在3%的物理混合物中观察到CO转化率提高。结果强调了表面Mn掺杂对Co形态影响的普遍性和重要性,从而提高了醇/烯烃的选择性。
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