Related Experiment Video
Updated: May 15, 2025

Minimally Invasive Transverse Aortic Constriction in Mice
Published on: March 14, 2017
Minimized TiO2 Loading Improves the Plasmonic Cu Hot Carrier-Driven Methanol Steam Reforming Under Standard Solar
Mohammed A Abdalmwla1, Tahir Naveed Jahangir1, Hassan S Alqahtani2
1Department of Chemistry, King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.
Abstract:
Methanol is a promising liquid organic hydrogen carrier, and developing an efficient method to reform and release hydrogen from it with low thermal input is desirable. This study investigates plasmonic Cu nanoparticles derived from CuAl-LDH for thermo-photo catalytic (TPC) methanol steam reforming (MSR). The reduced catalyst (R-Cu/Al2O3) absorbs solar light up to 780 nm. Under standard irradiation (1.0 sun, AM1.5G) at 200 °C, the TPC hydrogen production rate via MSR (36.9 mmol·g-1·h-1) was four times higher than that achieved by the thermocatalytic (TC) process (9.0 mmol g-1·h-1). Notably, modifying R-Cu/Al2O3 with 1.0 wt % TiO2 via a facile physical mixing method further boosted the TPC hydrogen production by 77%, reaching 65.2 (163.1) mmol·g-1·h-1 (mmol·g-1·h-1·W-1). A strong correlation between the rate of hydrogen production and light absorption spectrum of plasmonic Cu was observed with a linear dependence on light intensity, confirming the role of hot-carriers in MSR reactions. Consequently, the apparent activation energy of PTC-MSR was reduced to 29.20 kJ·mol-1, significantly lower than that of TC-MSR (62.15 kJ·mol-1), thereby enhancing the kinetics of the TPC-MSR process. Complete MSR was achieved with a H2-to-CO2 ratio of three, with no CO detected, demonstrating its industrial viability.
More Related Videos
08:06Author Spotlight: Optimizing Porous Substrate Electroporation Through Micro and Nanochannels for Enhanced Monitoring and Intermediate Stage Characterization
Published on: September 27, 2024
09:49A Protocol for Electrochemical Evaluations and State of Charge Diagnostics of a Symmetric Organic Redox Flow Battery
Published on: February 13, 2017