Aqueous phase reforming of glycerol was studied over a series of γ-Al2O3supported metal nanoparticle catalysts for hydrogen production in a batch reactor. Of the metals studied, Pt/Al2O3was found to be the most active catalyst under the conditions tested. A further systematic study on the impact of reaction parameters, including stirring speed, pressure, temperature, and substrate/metal molar ratio, was conducted and the optimum conditions for hydrogen production (and kinetic regime) were determined as 240 °C, 42 bar, 1000 rpm, and substrate/metal molar ratio ≥ 4100 for a 10 wt% glycerol feed. The glycerol conversion and hydrogen yield achieved at these conditions were 18% and 17%, respectively, with negligible CO and CH4formation. Analysis of the spent catalyst using FTIR provides an indication that the reaction pathway includes glycerol dehydrogenation and dehydration steps in the liquid phase in addition to typical reforming and water gas shift reactions in the gas phase.

Subramanian, N.D., Callison, J., Catlow, C.R.A., Wells, P.P., Dimitratos, N. (2016). Optimised hydrogen production by aqueous phase reforming of glycerol on Pt/Al2O3. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 41(41), 18441-18450 [10.1016/j.ijhydene.2016.08.081].

Optimised hydrogen production by aqueous phase reforming of glycerol on Pt/Al2O3

Dimitratos, Nikolaos
2016

Abstract

Aqueous phase reforming of glycerol was studied over a series of γ-Al2O3supported metal nanoparticle catalysts for hydrogen production in a batch reactor. Of the metals studied, Pt/Al2O3was found to be the most active catalyst under the conditions tested. A further systematic study on the impact of reaction parameters, including stirring speed, pressure, temperature, and substrate/metal molar ratio, was conducted and the optimum conditions for hydrogen production (and kinetic regime) were determined as 240 °C, 42 bar, 1000 rpm, and substrate/metal molar ratio ≥ 4100 for a 10 wt% glycerol feed. The glycerol conversion and hydrogen yield achieved at these conditions were 18% and 17%, respectively, with negligible CO and CH4formation. Analysis of the spent catalyst using FTIR provides an indication that the reaction pathway includes glycerol dehydrogenation and dehydration steps in the liquid phase in addition to typical reforming and water gas shift reactions in the gas phase.
2016
Subramanian, N.D., Callison, J., Catlow, C.R.A., Wells, P.P., Dimitratos, N. (2016). Optimised hydrogen production by aqueous phase reforming of glycerol on Pt/Al2O3. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 41(41), 18441-18450 [10.1016/j.ijhydene.2016.08.081].
Subramanian, Nachal D.; Callison, June; Catlow, C. Richard A.; Wells, Peter P.; Dimitratos, Nikolaos
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/666544
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