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Updated: Feb 17, 2026

Hydrogen Production and Utilization in a Membrane Reactor
Published on: March 10, 2023
Low-Temperature Hydrogen Production From Liquefied Petroleum Gas via Mechanochemistry
Ruiqian Gu1, Lixin Chen2, Yingnan Zhao1
1Key Laboratory of Automobile Materials (Jilin University), Ministry of Education, School of Materials Science and Engineering, Jilin University, Changchun, China.
Abstract:
Steam reforming of hydrocarbons is currently the dominant method for hydrogen (H2) production. As a petroleum refining byproduct rich in butane and propane, liquefied petroleum gas (LPG) offers a more accessible and easily transportable alternative feedstock of hydrocarbons relative to methane-enriched natural gas. However, conventional steam reforming of LPG requires high temperatures to cleave stable C─H bonds, and the inevitable release of carbon oxides as byproducts limits H2 selectivity ( < 76 vol%). To overcome these limitations, we report a low-temperature (37°C) mechanochemical strategy for converting LPG into high-purity H2 with chromium (Cr) powder. The reaction proceeds without carbon emissions and achieves a high H2 selectivity of 97.2 vol%, far surpasses that of the thermochemical route (21.3 vol% at 800°C). The H2 yield rate exhibits at least 50 times enhancement compared to thermochemistry. The H2 yield ratio reaches 94.6%, nearly 13 times greater than thermochemistry (7.3%). Mechanistically, strong metal-carbon interactions promote dehydrogenation and C─C bond cleavage, and metal-hydrogen interactions determine H2 selectivity. These findings highlight mechanochemistry as a promising low-temperature, carbon-free approach for sustainable H2 generation.
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