Reversible hydrogen storage at low temperatures of high sulfur petroleum coke‑magnesium composites prepared by nano melt infiltration

IF 8.9 2区 工程技术 Q1 ENERGY & FUELS
Yang Zhang , Jingcai Chang , Yulin Huang , Xinan Zhang , Haoran Wu , Yifan Li , Chen Huang , Yiming Wang , Chunyan Xu , Zuoli He
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引用次数: 0

Abstract

Petroleum porous activated carbon (PPC), prepared from high‑sulfur petroleum coke, possesses a rich pore structure and can serve as an inexpensive matrix material for the preparation of nano‑magnesium hydrogen storage materials, which shows broad potential for application. Based on this, the pore structure distribution and evolution characteristics of PPC under different activation conditions were studied, and a series of magnesium (Mg)-based hydrogen storage materials were prepared and characterized as promising candidates for hydrogen storage. Samples prepared by the balling-pelleting-impregnation method exhibited desired hydrogen release at 30 °C, and the peak hydrogen desorption temperatures were divided into 80 °C and 300 °C, with 0.6 wt% reversible hydrogenation/dehydrogenation at 100 °C under the influence of nanosizing, physical isolation by PPC pores, and the synergistic catalysis of the MgC bond. The key factors affecting Mg loading, including melting temperature, processing time, and ball milling usage, were systematically investigated. Confirmatory experiments and simulation results indicated that evaporation is the predominant factor affecting the stable deposition of Mg nano-clusters in PPC, due to its significantly lower boiling point compared to bulk Mg during infiltration. This finding prompted the formulation of a balling-pellet-impregnation-condensing multi-driver synergistic strategy, resulting in a magnesium loading of 48 %, which warrants further investigation.

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纳米熔渗法制备的高硫石油焦-镁复合材料在低温下的可逆氢储存
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来源期刊
Journal of energy storage
Journal of energy storage Energy-Renewable Energy, Sustainability and the Environment
CiteScore
11.80
自引率
24.50%
发文量
2262
审稿时长
69 days
期刊介绍: Journal of energy storage focusses on all aspects of energy storage, in particular systems integration, electric grid integration, modelling and analysis, novel energy storage technologies, sizing and management strategies, business models for operation of storage systems and energy storage developments worldwide.
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