Lei Dongqiang, Wang Linhao, Lv Yue, Luo Nengchao, Wang Zhifeng
Institute of Electrical Engineering, Chinese Academy of Sciences, No.6 Beiertiao, Zhongguancun, Beijing, 100190, China.
University of Chinese Academy of Sciences, No.19 (A) Yuquan Rd, Shijingshan District, Beijing, 100049, China.
Chemistry. 2024 Aug 22;30(47):e202401486. doi: 10.1002/chem.202401486. Epub 2024 Jul 30.
Biomass photoreforming is a promising way of producing sustainable hydrogen thanks to the abundant sources of biomass feedstocks. Solar energy provides the heat and driven force to initial biomass oxidation coupled with H evolution. Currently, biomass photoreforming is still far from plant-scale applications due to the lower solar energy utilization efficiencies, the low H yield, and the lack of appropriate photoreactors. The production of H from photoreforming of native biomass and platform molecules was summarized and discussed with particular attention to the prospects of scaling up the catalysis technology for mass hydrogen production. The types of photoreforming, including photocatalysis and photothermal catalysis, were discussed, consequently considering the different requirements for photoreactors. We also reviewed the photoreactors that support biomass photoreforming. Numerical simulation methods were implemented for the solid-liquid two-phase flow and inter-particle radiative transfer involved in the reaction process. Developing concentrated photothermal catalytic flowed reactors is beneficial to scale-up catalytic hydrogen production from biomass.
生物质光重整是一种很有前景的可持续制氢方法,这得益于丰富的生物质原料来源。太阳能提供热量和驱动力,引发生物质氧化并伴随着氢气生成。目前,由于太阳能利用效率较低、氢气产量低以及缺乏合适的光反应器,生物质光重整距离工业化规模应用仍有很大差距。本文总结并讨论了天然生物质和平台分子光重整制氢的情况,特别关注了扩大催化技术以实现大规模制氢的前景。讨论了光重整的类型,包括光催化和光热催化,并考虑了对光反应器的不同要求。我们还综述了支持生物质光重整的光反应器。对反应过程中涉及的固液两相流和颗粒间辐射传热进行了数值模拟。开发集中式光热催化流动反应器有利于扩大生物质催化制氢的规模。