Hydrogen Production Performances via Steam Reforming over Hydrotalcite Derived Catalyst: A Sustainable Energy Production Review — Oak Academic Publishing
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Hydrogen Production Performances via Steam Reforming over Hydrotalcite Derived Catalyst: A Sustainable Energy Production Review
Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
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School of Chemical Engineering, College of Engineering and Physical Sciences, University of Birmingham, United Kingdom
1 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
2 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
3 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
4 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
5 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
6 Hydrogen Energy Laboratory, BCSIR Laboratories Chittagong, Bangladesh Council of Scientific & Industrial Research (BCSIR), Bangladesh
7 School of Chemical Engineering, College of Engineering and Physical Sciences, University of Birmingham, United Kingdom
The review outcome represents the optimum catalytic conditions for the pro duction of hydrogen using hydrotalcite derived catalysts. It covers dr y and ste am reforming of methane, steam reforming of methanol and ethanol t o hydrogen. The review also revealed the specific properties of hydrotalcite der ived catalysts for the reactions. Among catalyst investigated, Ni & Fe promoted Al-Mg containing hydrotalcite catalyst perform best (99%) for dry reforming of methane at 250°C. For steam methane reforming, Ni containing ca-aluminates hydrotalcite catalyst act as the best (99%) at 550°C. Cu-supporte d Zn-Al-containing catalyst performs the best (99.98%) for steam reforming of methanol at 300°C whereas Cu impregnated Mg-Al containing hydrotalcite is the best (99%) for steam reforming of ethanol at 200°C - 600°C. It’s (HT ) tunable and versatile textural and morphological properties showed excellent catalytic performances for different industrial processes and in sustainable hydrogen production.
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