Department of Chemical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.
Department of Energy Engineering, School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 44919, Republic of Korea.
Adv Sci (Weinh). 2022 Dec;9(35):e2204170. doi: 10.1002/advs.202204170. Epub 2022 Oct 26.
Recent studies have found that green hydrogen production and biomass utilization technologies can be combined to efficiently produce both hydrogen and value-added chemicals using biomass as an electron and proton source. However, the majority of them have been limited to proof-of-concept demonstrations based on batch systems. Here the authors report the design of modular flow systems for the continuous depolymerization and valorization of lignin and low-voltage hydrogen production. A redox-active phosphomolybdic acid is used as a catalyst to depolymerize lignin with the production of aromatic compounds and extraction of electrons for hydrogen production. Individual processes for lignin depolymerization, byproduct separation, and hydrogen production with catalyst reactivation are modularized and integrated to perform the entire process in the serial flow. Consequently, this work enabled a one-flow process from biomass conversion to hydrogen gas generation under a cyclic loop. In addition, the unique advantages of the fluidic system (i.e., effective mass and heat transfer) substantially improved the yield and efficiency, leading to hydrogen production at a higher current density (20.5 mA cm ) at a lower voltage (1.5 V) without oxygen evolution. This sustainable eco-chemical platform envisages scalable co-production of valuable chemicals and green hydrogen for industrial purposes in an energy-saving and safe manner.
最近的研究发现,绿色制氢和生物质利用技术可以结合使用,以生物质为电子和质子源,高效地生产氢气和增值化学品。然而,大多数研究都局限于基于批处理系统的概念验证演示。在这里,作者报告了用于木质素连续解聚和增值以及低压氢气生产的模块化流动系统的设计。一种氧化还原活性的磷钼酸被用作催化剂,将木质素解聚,生成芳香族化合物,并提取电子用于制氢。木质素解聚、副产物分离和催化剂再生的单个过程被模块化并集成到串联流中,以在连续流中执行整个过程。因此,这项工作使生物质转化为氢气的过程能够在循环回路中进行。此外,该流动系统的独特优势(即有效的质量和热传递)显著提高了产率和效率,从而在 1.5V 的低电压下以更高的电流密度(20.5mA cm )产生氢气,而没有氧气的析出。这种可持续的生态化学平台设想以节能和安全的方式为工业目的规模化联产有价值的化学品和绿色氢气。