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液态水中生物质衍生碳氢化合物催化重整产生的氢气。

Hydrogen from catalytic reforming of biomass-derived hydrocarbons in liquid water.

作者信息

Cortright R D, Davda R R, Dumesic J A

机构信息

Department of Chemical Engineering, University of Wisconsin, Madison, Wisconsin 53706, USA.

出版信息

Nature. 2002 Aug 29;418(6901):964-7. doi: 10.1038/nature01009.

Abstract

Concerns about the depletion of fossil fuel reserves and the pollution caused by continuously increasing energy demands make hydrogen an attractive alternative energy source. Hydrogen is currently derived from nonrenewable natural gas and petroleum, but could in principle be generated from renewable resources such as biomass or water. However, efficient hydrogen production from water remains difficult and technologies for generating hydrogen from biomass, such as enzymatic decomposition of sugars, steam-reforming of bio-oils and gasification, suffer from low hydrogen production rates and/or complex processing requirements. Here we demonstrate that hydrogen can be produced from sugars and alcohols at temperatures near 500 K in a single-reactor aqueous-phase reforming process using a platinum-based catalyst. We are able to convert glucose -- which makes up the major energy reserves in plants and animals -- to hydrogen and gaseous alkanes, with hydrogen constituting 50% of the products. We find that the selectivity for hydrogen production increases when we use molecules that are more reduced than sugars, with ethylene glycol and methanol being almost completely converted into hydrogen and carbon dioxide. These findings suggest that catalytic aqueous-phase reforming might prove useful for the generation of hydrogen-rich fuel gas from carbohydrates extracted from renewable biomass and biomass waste streams.

摘要

对化石燃料储备枯竭以及不断增长的能源需求所造成污染的担忧,使得氢气成为一种颇具吸引力的替代能源。氢气目前来自不可再生的天然气和石油,但原则上可以从生物质或水等可再生资源中制取。然而,从水中高效制取氢气仍然困难,而从生物质制取氢气的技术,如糖类的酶分解、生物油的蒸汽重整和气化,存在氢气产率低和/或加工要求复杂的问题。在此,我们证明在使用铂基催化剂的单反应器水相重整过程中,糖类和醇类在接近500 K的温度下能够制取氢气。我们能够将构成动植物主要能量储备的葡萄糖转化为氢气和气态烷烃,氢气占产物的50%。我们发现,当使用比糖类还原程度更高的分子时,氢气生产的选择性会增加,乙二醇和甲醇几乎能完全转化为氢气和二氧化碳。这些发现表明,催化水相重整可能对于从可再生生物质和生物质废物流中提取的碳水化合物制取富氢燃料气是有用的。

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