用于可持续氢气和增值化学品联合生产的葡萄糖光提炼厂

Zhe Sun, Heng Zhao, Xinti Yu, Jinguang Hu, Zhangxin Chen
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引用次数: 0

摘要

生物质作为一种天然存在且稳定的能源供应,将成为未来可再生能源的主导,其高价值应用将有助于推动实现碳中和。葡萄糖作为木质纤维素生物质的基本单位,已被广泛研究用作生产各种高附加值化学品的原料。与热催化、生物发酵等传统的葡萄糖增值平台相比,太阳能驱动的光催化技术具有反应条件温和、反应动力学可控等优势,正在成为一种可持续的高效葡萄糖转化技术。通过合理设计光催化剂,葡萄糖可通过定向键裂解选择性地转化为特定的化学物质,同时可持续地产生氢气,这就是所谓的葡萄糖光精炼过程。本综述介绍了葡萄糖光精制的一般原理和最新进展。此外,还介绍了如何合理设计双功能光催化剂,以实现扩展光吸收、高效电荷分离和有利的表面反应。重点介绍了葡萄糖分子中化学键的定向断裂,从而在不同的活性位点上产生不同的化学物质。最后,提出了葡萄糖光精炼的挑战和前景,以实现更高的效率和更富有成效的反应途径。相信本综述将为利用温和光催化技术实现生物质增值提供指导,从而通过合理设计具有双重功能的光催化剂,同时生产可持续燃料和化学品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Glucose photorefinery for sustainable hydrogen and value-added chemicals coproduction
As a naturally occurring and stable energy supply, biomass will be the leading renewable energy in the future, and its high-value application will help promote the realization of carbon neutrality. Glucose, as the basic unit of lignocellulosic biomass, has been widely investigated as the feedstock to produce various value-added chemicals. Compared to the traditional glucose valorization platforms, such as thermal catalysis and biological fermentation, solar-driven photocatalysis holds the advantages in mild reaction conditions and controllable reaction kinetics, and it is emerging as a sustainable and efficient technology for glucose conversion. With the rational design of the photocatalysts, glucose could be selectively converted into specified chemicals via oriented bond cleavage along with the sustainable generation of hydrogen at the same time, which is the so-called glucose photorefinery process. This present review introduces the general principles and latest progress in glucose photorefinery. The rational design of bifunctional photocatalysts to achieve extended light absorption, efficient charge separation, and favorable surface reaction is also introduced. The oriented breakage of the chemical bonds in glucose molecules to produce different chemicals on different active sites is highlighted. Finally, challenges and perspectives on glucose photorefinery to achieve further efficiency and more fruitful reaction pathways are proposed. This present review is believed to provide guidance for the biomass valorization by mild photocatalysis to simultaneously produce sustainable fuels and chemicals with the rational design of dually functional photocatalysts.
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