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用于催化燃烧的纳米结构复合氧化物的反相微乳液合成法

Reverse microemulsion synthesis of nanostructured complex oxides for catalytic combustion.

作者信息

Zarur AJ, Ying JY

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge 02139-4307, USA.

出版信息

Nature. 2000 Jan 6;403(6765):65-7. doi: 10.1038/47450.

Abstract

Catalysts play an important role in many industrial processes, but their use in high-temperature applications-such as energy generation through natural gas combustion, steam reforming and the partial oxidation of hydrocarbons to produce feedstock chemicals--is problematic. The need for catalytic materials that remain stable and active over long periods at high operation temperatures, often in the presence of deactivating or even poisoning compounds, presents a challenge. For example, catalytic methane combustion, which generates power with reduced greenhouse-gas and nitrogen-oxide emissions, is limited by the availability of catalysts that are sufficiently active at low temperatures for start-up and are then able to sustain activity and mechanical integrity at flame temperatures as high as 1,300 degrees C. Here we use sol-gel processing in reverse microemulsions to produce discrete barium hexa-aluminate nanoparticles that display excellent methane combustion activity, owing to their high surface area, high thermal stability and the ultrahigh dispersion of cerium oxide on the their surfaces. Our synthesis method provides a general route to the production of a wide range of thermally stable nanostructured composite materials with large surface-to-volume ratios and an ultrahigh component dispersion that gives rise to synergistic chemical and electronic effects, thus paving the way to the development of catalysts suitable for high-temperature industrial applications.

摘要

催化剂在许多工业过程中发挥着重要作用,但它们在高温应用中的使用存在问题,例如通过天然气燃烧、蒸汽重整以及烃类部分氧化来生产原料化学品以进行能源发电等。需要催化材料在高温操作条件下长时间保持稳定和活性,而且常常是在存在使催化剂失活甚至中毒的化合物的情况下,这是一项挑战。例如,催化甲烷燃烧能在减少温室气体和氮氧化物排放的情况下发电,但受到催化剂可用性的限制,这些催化剂需要在低温下具有足够的活性以便启动,然后在高达1300摄氏度的火焰温度下仍能维持活性和机械完整性。在此,我们利用反相微乳液中的溶胶-凝胶工艺制备出离散的六铝酸钡纳米颗粒,这些颗粒由于具有高比表面积、高热稳定性以及氧化铈在其表面的超高分散性而展现出优异的甲烷燃烧活性。我们的合成方法为制备一系列具有大表面体积比和超高组分分散性的热稳定纳米结构复合材料提供了一条通用途径,这种分散性会产生协同的化学和电子效应,从而为开发适用于高温工业应用的催化剂铺平了道路。

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