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Enhanced hydrogen production properties of a novel aluminum-based composite for instant on-site hydrogen supply at low temperature

机译:一种新型铝基复合材料的增强制氢性能,可在低温下即时现场供氢

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摘要

Al-water reaction for hydrogen production faces the problems of long induction time and low conversion efficiency at low temperature (below 273.15 K), which has seriously limited its applications. To realize the instant hydrogen production of Al composites at low temperature, low melting point metals (Ga, In, Sn) and additives (NaCl, g-C3N4, LiH) were selected to prepare Al composites with high reactivity. Compared with the other Al composites, Al alloy/NaCl/LiH/g-C3N4 composites exhibit the enhanced low temperature hydrogen production performance in 23 wt NaCl aqueous solution at 253.15 K. For all Al alloy/NaCl/LiH/g-C3N4 composites, the induction time of Al-water reaction at 253.15 K has completely eliminated. The highest hydrogen generation volume of 1095 mL.gAl(-1) and the maximum hydrogen generation rate of 120 mL.gAl(-1).s(-1) were obtained for Al alloy/NaCl/ 1.5LiH/g-C3N4 composite. It is proposed that LiH can induce Al-water reaction instantly starting at 253.15 K. The released heat and micro alkaline environment further promote the Al-water reaction and enhance the hydrogen conversion efficiency. In particular, g-C3N4 additive can improve the antioxidant properties of Al composites. This study provides a novel way for the development and application of Al composites in real-time hydrogen production at low temperature. (C) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:铝水制氢反应在低温(273.15 K以下)面临诱导时间长、转化效率低等问题,严重限制了其应用。为实现Al复合材料在低温下的瞬时产氢,选用低熔点金属(Ga、In、Sn)和添加剂(NaCl、g-C3N4、LiH)制备高反应活性Al复合材料。与其他Al复合材料相比,Al合金/NaCl/LiH/g-C3N4复合材料在253.15 K下在23 wt% NaCl水溶液中表现出增强的低温产氢性能。对于所有Al合金/NaCl/LiH/g-C3N4复合材料,在253.15 K时Al-水反应的诱导时间已完全消除。Al合金/NaCl/1.5%LiH/g-C3N4复合材料的最高产氢量为1095 mL.gAl(-1),最大产氢量为120 mL.gAl(-1).s(-1)。提出LiH可以在253.15 K处立即诱导Al-水反应。释放的热量和微碱性环境进一步促进了Al-水反应,提高了氢气转化效率。特别是g-C3N4添加剂可以改善Al复合材料的抗氧化性能。本研究为Al复合材料在低温实时制氢中的开发和应用提供了新的途径。(c) 2022 Hydrogen Energy Publications LLC.,由爱思唯尔有限公司出版。保留所有权利。

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