Jian Lin , Xin Lin , Dechao Wang , Kaiyue Wu , Quan Yao , Haihan Huang , Jinping Xu , Duo Wang , Yueyuan Ye , Jianchun Jiang , Zhifeng Zheng
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引用次数: 0
Abstract
One-step synthesis of an armoured catalyst featuring an ordered carbon layer-coated FeCoNiCuZn high-entropy alloy was reported for the catalytic reforming of biomass pyrolysis volatiles to produce renewable hydrogen. The prepared catalysts were characterized in detail by multiple techniques to reveal the features of the ordered carbon layer and the distribution of the high-entropy alloy. Response surface-centred combinatorial design (RSM-CCD) was employed to optimize the process conditions for hydrogen production from the catalytic pyrolysis of poplar wood sawdust. The results indicated that the FeCoNiCuZn-800 catalyst exhibited the best performance, and its unique structure contributed to an enhanced hydrogen yield. The enhanced catalytic performance stems primarily from the multi-element synergy within the HEA. Furthermore, the mesoporous structure facilitates mass transport, while the ordered carbon layers suppress nanoparticle agglomeration and promote electron transfer. The optimized process conditions were a pyrolysis temperature of 515 °C, a catalytic temperature of 622 °C, and a catalyst quality of 0.623 g. Under these conditions, the maximum hydrogen yield reached 40.10 vol% and 12.80 mmol·g⁻¹biomass-daf, demonstrating the great potential of this catalyst in the field of renewable hydrogen production.
期刊介绍:
The Journal of Analytical and Applied Pyrolysis (JAAP) is devoted to the publication of papers dealing with innovative applications of pyrolysis processes, the characterization of products related to pyrolysis reactions, and investigations of reaction mechanism. To be considered by JAAP, a manuscript should present significant progress in these topics. The novelty must be satisfactorily argued in the cover letter. A manuscript with a cover letter to the editor not addressing the novelty is likely to be rejected without review.