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生物质水热碳化制备功能性含碳材料:一种有效的化学过程

Functional carbonaceous materials from hydrothermal carbonization of biomass: an effective chemical process.

作者信息

Hu Bo, Yu Shu-Hong, Wang Kan, Liu Lei, Xu Xue-Wei

机构信息

Division of Nanomaterials & Chemistry, Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei, P. R. China.

出版信息

Dalton Trans. 2008 Oct 28(40):5414-23. doi: 10.1039/b804644c. Epub 2008 Jun 26.

Abstract

Recently, much attention has been attracted to the use of biomass to produce functional carbonaceous materials from the viewpoint of economic, environmental and societal issues. Among different techniques, the hydrothermal carbonization (HTC) process, a traditional but recently revived method, presents superior characteristics that make it a promising route of wide potential application. This perspective gives an overview of the latest advances in the HTC process of functional carbonaceous materials from biomass. First, we discuss the preparation of carbonaceous materials synthesized by the use of either highly directed or catalyst/template-assisted methods, from crude plant materials and carbohydrates respectively. These carbonaceous materials not only have special morphologies, such as nanospheres, nanocables, nanofibers, submicrocables, submicrotubes and porous structures, but also contain rich functional groups which can greatly improve hydrophilicity and chemical reactivity. Further, a general look is cast on the applications of this kind of carbonaceous materials in environmental, catalytic and electrical areas. Recent advances have demonstrated that the HTC process from biomass can provide promising methods for the rational design of a rich family of carbonaceous and hybrid functional carbon materials with important applications.

摘要

最近,从经济、环境和社会问题的角度来看,生物质用于生产功能性碳质材料已引起了广泛关注。在不同的技术中,水热碳化(HTC)工艺是一种传统但最近又重新兴起的方法,具有卓越的特性,使其成为一种具有广阔潜在应用前景的途径。本文综述了生物质制备功能性碳质材料的水热碳化工艺的最新进展。首先,我们分别讨论了通过高度定向或催化剂/模板辅助方法,由粗植物材料和碳水化合物合成碳质材料的制备过程。这些碳质材料不仅具有特殊的形态,如纳米球、纳米电缆、纳米纤维、亚微电缆、亚微管和多孔结构,而且还含有丰富的官能团,可大大提高亲水性和化学反应活性。此外,还概述了这类碳质材料在环境、催化和电气领域的应用。最近的进展表明,生物质水热碳化工艺可为合理设计一系列具有重要应用的碳质和混合功能碳材料提供有前景的方法。

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