Ouyang Denghao, Wang Fangqian, Gao Daihong, Han Wenquan, Hu Xu, Qiao Dawei, Zhao Xuebing
Key Laboratory of Industrial Biocatalysis, Ministry of Education; Tsinghua University, Beijing 100084, China.
Institute of Applied Chemistry, Department of Chemical Engineering, Tsinghua University, Beijing 100084, China.
iScience. 2022 Sep 27;25(10):105221. doi: 10.1016/j.isci.2022.105221. eCollection 2022 Oct 21.
The depletion of fossil fuels and the increasingly severe environmental pollution caused by massive fossil fuel consumption has driven the quick development of emerging renewable energy technologies. As the most extensive renewable carbon resource, lignocellulose is the potential substitute of fossil resources because of its sustainability and carbon-neutral features. Efficient lignocellulose conversion based on photocatalysis is a promising topic because of sustainable solar energy and the mild condition. This review highlights state-of-the-art photocatalytic technologies for lignocellulosic biomass conversion, focusing on the electricity generation, hydrogen production, and high-value-added biomass derivatives production. Moreover, the progress, challenge, and perspectives of related photocatalytic technologies are specifically discussed. It is recommended that developing more robust and efficient photocatalysts suitable for the complex structure of lignocellulose is necessary to promote the oxidation the biomass. Design and development of novel photochemical reactors and photoelectrochemical cells are also important for demonstration of light-driven lignocellulose conversion at larger scale.
化石燃料的枯竭以及大量消耗化石燃料所导致的日益严重的环境污染,推动了新兴可再生能源技术的快速发展。作为最广泛的可再生碳资源,木质纤维素因其可持续性和碳中性特征,是化石资源的潜在替代品。基于光催化的高效木质纤维素转化是一个很有前景的课题,因为太阳能可持续且条件温和。本文综述重点介绍了用于木质纤维素生物质转化的先进光催化技术,聚焦于发电、制氢以及高附加值生物质衍生物的生产。此外,还特别讨论了相关光催化技术的进展、挑战和前景。建议开发更坚固、高效且适合木质纤维素复杂结构的光催化剂,以促进生物质的氧化。设计和开发新型光化学反应器和光电化学电池对于大规模展示光驱动木质纤维素转化也很重要。