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Anaerobic oxidation of ethanol over spinel mixed oxides: the first step in the steam-iron process for H2 production

机译:尖晶石混合氧化物对乙醇的厌氧氧化:蒸汽熨斗生产H2的第一步

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摘要

The future hydrogen demand is expected to increase, both in existing industries (including upgrading of fossil fuels or ammonia production) and in new technologies, like fuel cells. Nowadays, hydrogen is obtained predominantly by steam reforming of methane, but it is well known that hydrocarbon based routes result in environmental problems and besides the market is dependent on the availability of this finite resource which is suffering of rapid depletion. Therefore, alternative processes using renewable sources like wind, solar energy and biomass, are now being considered for the production of hydrogen. One of those alternative methods is the so-called “steam-iron process” which consists in the reduction of a metal-oxide by hydrogen-containing feedstock, like ethanol for instance, and then the reduced material is reoxidized with water to produce “clean” hydrogen (water splitting). This kind of thermochemical cycles have been studied before but currently some important facts like the development of more active catalysts, the flexibility of the feedstock (including renewable bio-alcohols) and the fact that the purification of hydrogen could be avoided, have significantly increased the interest for this research topic.ududWith the aim of increasing the understanding of the reactions that govern the steam-iron route to produce hydrogen, it is necessary to go into the molecular level. Spectroscopic methods are an important tool to extract information that could help in the development of more efficient materials and processes. In this research, ethanol was chosen as a reducing fuel and the main goal was to study its interaction with different catalysts having similar structure (spinels), to make a correlation with the composition and the mechanism of the anaerobic oxidation of the ethanol which is the first step of the steam-iron cycle. To accomplish this, diffuse reflectance spectroscopy (DRIFTS) was used to study the surface composition of the catalysts during the adsorption of ethanol and its transformation during the temperature program. Furthermore, mass spectrometry was used to monitor the desorbed products. The set of studied materials include Cu, Co and Ni ferrites which were also characterized by means of X-ray diffraction, surface area measurements, Raman spectroscopy, and temperature programmed reduction.ud
机译:在现有行业(包括化石燃料的升级或氨生产)和燃料电池等新技术中,未来对氢气的需求预计都将增加。如今,氢气主要是通过甲烷的蒸汽重整获得的,但是众所周知,基于碳氢化合物的路线会导致环境问题,此外,市场依赖于这种有限资源的可用性,而这种有限资源正在迅速消耗。因此,现在正在考虑使用可再生资源(例如风能,太阳能和生物质)的替代方法来生产氢。这些替代方法之一是所谓的“蒸汽-铁法”,该方法包括通过含氢原料(例如乙醇)还原金属氧化物,然后将还原后的材料用水再氧化以产生“清洁的氢(水分解)。以前已经研究过这种热化学循环,但是目前一些重要的事实,例如开发更具活性的催化剂,原料的柔韧性(包括可再生生物醇)以及可以避免氢气纯化的事实,大大提高了反应的效率。 ud ud为了增进对控制蒸汽-铁生成氢的反应的理解,有必要进入分子水平。光谱方法是提取信息的重要工具,可以帮助开发更有效的材料和工艺。在这项研究中,选择乙醇作为还原燃料,其主要目的是研究其与具有相似结构(尖晶石)的不同催化剂之间的相互作用,从而与乙醇厌氧氧化的组成和机理相关联。蒸汽熨斗循环的第一步。为此,使用漫反射光谱法(DRIFTS)研究了乙醇吸附过程中催化剂的表面组成及其在程序升温过程中的转化。此外,质谱法用于监测解吸的产物。研究的材料包括Cu,Co和Ni铁氧体,它们也通过X射线衍射,表面积测量,拉曼光谱和程序升温还原来表征。

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    Velasquez Juliana;

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  • 年度 2012
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  • 正文语种 en
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