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作为液体有机氢载体(LOHCs)的氮杂环和芳烃中的多相催化剂:历史、现状与未来

Heterogeneous Catalysts in N-Heterocycles and Aromatics as Liquid Organic Hydrogen Carriers (LOHCs): History, Present Status and Future.

作者信息

Zhang Jinxu, Yang Fusheng, Wang Bin, Li Dong, Wei Min, Fang Tao, Zhang Zaoxiao

机构信息

School of Chemical Engineering and Technology, Xi'an Jiaotong University, Xi'an 710049, China.

Shaanxi Hydrotransformer Energy Technologies Co., Ltd., Xi'an 712000, China.

出版信息

Materials (Basel). 2023 May 15;16(10):3735. doi: 10.3390/ma16103735.

Abstract

The continuous decline of traditional fossil energy has cast the shadow of an energy crisis on human society. Hydrogen generated from renewable energy sources is considered as a promising energy carrier, which can effectively promote the energy transformation of traditional high-carbon fossil energy to low-carbon clean energy. Hydrogen storage technology plays a key role in realizing the application of hydrogen energy and liquid organic hydrogen carrier technology, with many advantages such as storing hydrogen efficiently and reversibly. High-performance and low-cost catalysts are the key to the large-scale application of liquid organic hydrogen carrier technology. In the past few decades, the catalyst field of organic liquid hydrogen carriers has continued to develop and has achieved some breakthroughs. In this review, we summarized recent significant progress in this field and discussed the optimization strategies of catalyst performance, including the properties of support and active metals, metal-support interaction and the combination and proportion of multi-metals. Moreover, the catalytic mechanism and future development direction were also discussed.

摘要

传统化石能源的持续衰退给人类社会带来了能源危机的阴影。可再生能源制氢被视为一种很有前景的能量载体,它能有效推动传统高碳化石能源向低碳清洁能源的转变。储氢技术在实现氢能及液态有机氢载体技术的应用方面起着关键作用,具有高效、可逆储氢等诸多优点。高性能、低成本的催化剂是液态有机氢载体技术大规模应用的关键。在过去几十年里,有机液态氢载体的催化剂领域不断发展并取得了一些突破。在本综述中,我们总结了该领域近期的重大进展,并讨论了催化剂性能的优化策略,包括载体和活性金属的性质、金属-载体相互作用以及多金属的组合与比例。此外,还探讨了催化机理和未来发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c27/10220885/e2a36165923e/materials-16-03735-g001.jpg

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