Assessment of the importance and catalytic role of chromium oxide and chromium carbide for hydrogen generation via hydrolysis of magnesium

Increasing energy demands and low-carbon emission energy carriers are global challenges for renewable energy resources. Regarding the aforementioned issues, magnesium-based composites are promising candidates for energy carriers. However, rapid initial hydrolysis kinetics and higher hydrogen yields...

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Veröffentlicht in:Nanoscale 2024-10, Vol.16 (41), p.19518-19528
Hauptverfasser: Qin, Fei, Zhang, Yue, Naseem, Kashif, Chen, Zhanjun, Suo, Guoquan, Hayat, Waseem, Gardezi, Syed Hamza Safeer
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Sprache:eng
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Zusammenfassung:Increasing energy demands and low-carbon emission energy carriers are global challenges for renewable energy resources. Regarding the aforementioned issues, magnesium-based composites are promising candidates for energy carriers. However, rapid initial hydrolysis kinetics and higher hydrogen yields are the objectives for practical applications. In this study, chromium-based catalysts (Cr O and Cr C ) were employed ball milling to activate Mg. Finally, we used Mg- wt% Y ( = 1, 3, 5, and 10; Y = Cr O and Cr C ) composites to produce hydrogen. Mg-10 wt% Cr O can produce 798 and 812 mL g hydrogen, while Mg-10 wt% Cr C can produce 821 and 831.6 mL g hydrogen in seawater and 0.5 M MgCl solutions, respectively. Additionally, Cr O and Cr C significantly improve the Mg hydrolysis activation energies. However, by incorporating Cr O and Cr C , the activation energies for the hydrolysis of Mg with seawater achieved were 19.5 kJ mol and 17.3 kJ mol , while they reduced to 15.7 kJ mol and 14.4 kJ mol with 0.5 M MgCl solutions, respectively. In comparison, Mg-10 wt% Cr C composite exhibits superior performance, which is attributed to the higher anode potential value of Cr C . This work accelerates the hydrolysis kinetics and provides a sufficient technique to produce hydrogen from Mg composites for application in portable devices.
ISSN:2040-3364
2040-3372
2040-3372
DOI:10.1039/d4nr02760d