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《工程(英文)》 >> 2020年 第6卷 第12期 doi: 10.1016/j.eng.2020.02.021

生物质发电、制氢以及低温电化学研究进展综述

a School of Chemical and Biomolecular Engineering & Renewable Bioproducts Institute, Georgia Institute of Technology, Atlanta, GA 30332-0620, USA
b National Institute of Clean-and-Low-Carbon Energy, Beijing 102211, China
c Department of Chemistry, Nowgong College, Nagaon 782001, India
# These authors contributed equally to this work.

收稿日期: 2019-11-21 修回日期: 2020-01-08 录用日期: 2020-02-27 发布日期: 2020-11-01

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摘要

生物质是指储存化学能和太阳能的植物或动物材料,传统上被广泛应用于产热和各种工业过程。生物质中含有大量的氢元素,是制氢的极好原材料。因此,生物质是发电或制氢的可持续来源。虽然生物质发电厂和生物质转化厂已经商业化,但如何开发更有效、更经济的技术来进一步提高生物质转化效率和减少这些电厂对环境的影响,仍然是一项艰巨的挑战。利用生物质液体燃料电池技术将生物质直接转化为电能和在低温下通过电解将生物质转化为氢气的技术是近年来人们关注的两个新兴的研究领域。本文首先简要介绍了生物质转化为电能和氢能的传统技术,然后详细介绍了生物质液体燃料电池(FBFC)和生物质电解制氢(BEHP)的最新研究进展,并讨论了这两个领域进一步发展将面临的挑战。

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