首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Hydrodeoxygenation of guaiacol into cyclohexane over mesoporous silica supported Ni-ZrO2 catalyst
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Hydrodeoxygenation of guaiacol into cyclohexane over mesoporous silica supported Ni-ZrO2 catalyst

机译:在介孔二氧化硅上负载Ni-ZrO2催化剂,GuaiaCol的水丁酸氧基进入环己烷中的环己烷

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摘要

Ordered mesoporous silica SBA-15 and KIT-6 supported Ni/ZrO2 catalysts are evaluated for the hydrodeoxygenation of guaiacol (stirred batch reactor, 300 degrees C, 50 bar of H-2), guaiacol being a model compound of bio-oil issued from the lignin fraction of biomass liquefaction. ZrO2 and Ni are dispersed using incipient-wetness impregnation (IWI) or two-solvent (TS) method over mesoporous silica. Mesoporous zirconia (nanocasting method) and conventional zirconia were also used as supports. Cyclohexane, cyclohexanol and methoxycyclohexanol are the main products of reaction. Significant differences in cyclohexane yield are measured (after 8 h reaction, with conversion in most cases above 85%): NiZr-KIT-TS, 71.6% > NiZr-SBA-TS, 63.3% Ni/meso-Zr, 7.8% > NiZr-SBA-IWI, 5.2% > Ni/ZrO2, 1.6%. Tetragonal ZrO2 phase, acting as oxophilic phase for guaiacol/oxygenated intermediates adsorption and activation, is observed whatever the approach selected for the preparation. However, when nickel is supported over pure zirconia, low selectivity to cyclohexane is obtained, while the main product becomes cyclohexanol with yields reaching similar to 40%. Better activities and selectivities toward total deoxygenation (cyclohexane production) are obtained for the silica supported Ni-ZrO2 catalysts, especially when the catalyst is prepared by the two-solvent approach. Improvement is associated to the proximity between Ni and ZrO2 particles when confined in the silica mesopores. Finally, conversion and yield to cyclohexane obtained with NiZr-KIT-TS are stable during 5 successive catalytic cycles demonstrating the absence of significant modification of the catalyst during reaction. These results are evidencing that the confining strategy is efficient to improve stability of active elements during HDO reaction.
机译:评价有序的介孔二氧化硅SBA-15和试剂酮-6负载的Ni / ZrO 2催化剂,用于愈缩菌(搅拌批量反应器,300摄氏度,50巴的H-2),愈菌醇是发布的生物油模型化合物生物质液化的木质素分数。在中孔二氧化硅上使用初期湿度浸渍(IWI)或两溶剂(TS)方法分散ZrO2和Ni。中孔氧化锆(纳米氧化物方法)和常规氧化锆也用作支撑。环己烷,环己烷和甲氧基环己醇是反应的主要产物。测量环己烷产量的显着差异(在8小时后,在大多数情况下转化为85%):NizR-Kit-Ts,71.6%Nizr-SBA-TS,63.3% Ni / Meso-Zr,7.8% > Nizr-SBA-IWI,5.2%> Ni / ZrO2,1.6%。无论选择用于制剂的方法,观察到愈伤局的四面ZrO2相,作为愈伤症相对的吸附和活化。然而,当镍氧化镍的支持时,获得对环己烷的低选择性,同时主要产物变为环己醇,产率达到与40%相似。对于二氧化硅支持的Ni-ZrO 2催化剂,获得了总脱氧(环己烷生产)的更好的活性和选择性,特别是当催化剂通过双溶剂方法制备时。当局限于二氧化硅中孔中时,改善与Ni和ZrO2颗粒之间的接近有关。最后,在5个连续催化循环期间,用NizR-kit-Ts得到的转化和产率与NizR-kit-Ts获得的环己烷稳定,证明在反应过程中没有显着改性催化剂。这些结果证明了限制策略是有效的,以改善HDO反应期间活性元素的稳定性。

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