College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, People's Republic of China.
Institute of Petrochemistry, Heilongjiang Academy of Sciences, Harbin, 150040, People's Republic of China.
Environ Sci Pollut Res Int. 2020 Oct;27(29):36172-36185. doi: 10.1007/s11356-020-09698-w. Epub 2020 Jun 18.
The system based on liquid organic hydrogen carrier (LOHC) is one of the technologies to solve the problem of hydrogen storage and transportation capacity in large-scale applications. In this paper, the catalytic dehydrogenation of LOHC dodecahydro-N-ethylcarbazole (H12-NEC) over supported Pd nanoparticles (NPs) catalyst on four kinds of different supports, such as Pd/C, Pd/AlO, Pd/TiO, and Pd/SiO, was studied. It was found from catalyst characterization and dehydrogenation reaction that the volcano-type dependence of the activity on the Pd particle size, catalytic activity improvement with large specific surface area, and high Pd reduction degree indicated that the structure, particle size, and reduction degree of Pd NPs and textural properties of supports had a synergistic effect on the catalytic performance. Among all the catalysts, Pd/C displayed outstanding catalytic performance with the H12-NEC conversion of 99.9% and hydrogen storage capacity of 5.69 wt% at 180 °C after 12 h. The particle size of Pd/C distributes in the range of 1.5-6.0 nm with an average size of 3.0 nm. The results of dehydrogenation reaction kinetics showed that the rate limiting step and rate constant for different catalysts were mainly related to the physicochemical properties and adsorption and activation abilities towards the reactants and intermediates. In terms of the stationarity of dehydrogenation process, Pd/AlO was excellent, indicating that it was best for dehydrogenation of H12-NEC.
基于液体有机氢载体 (LOHC) 的系统是解决大规模应用中氢气储存和运输能力问题的技术之一。本文研究了负载型钯纳米粒子 (NPs) 催化剂上四种不同载体(Pd/C、Pd/AlO、Pd/TiO 和 Pd/SiO)上的 LOHC 十二氢-N-乙基咔唑 (H12-NEC) 的催化脱氢反应。通过催化剂表征和脱氢反应发现,活性与钯颗粒尺寸呈火山型依赖关系,大比表面积的催化活性提高和高 Pd 还原度表明 Pd NPs 的结构、粒径和还原度以及载体的织构性质对催化性能具有协同作用。在所有催化剂中,Pd/C 在 180°C 下经过 12 小时后表现出出色的催化性能,H12-NEC 的转化率为 99.9%,储氢容量为 5.69 wt%。Pd/C 的粒径分布在 1.5-6.0nm 范围内,平均粒径为 3.0nm。脱氢反应动力学的结果表明,不同催化剂的速率限制步骤和速率常数主要与反应物和中间体的物理化学性质以及对其的吸附和活化能力有关。就脱氢过程的稳定性而言,Pd/AlO 表现出色,表明其最适合 H12-NEC 的脱氢。