This work reports a promising and sustainable method for valorization of abundantly available biomass feedstocks to overcome the thermodynamic high energy barrier of the OER glucose electrolysis as a proxy anodic reaction, thereby driving the energy-efficient water splitting for green hydrogen generation. For this, a robust and efficient MIL-88B(Fe) based electrocatalyst is engineered Cu doping. The ultrasonically prepared Cu-doped@ MIL-88B ink when drop-cast on nickel foam (NF) produces thin nano-porous 2D-sheet like films having a thickness of 300 nm and demonstrates an excellent glucose oxidation reaction (GOR) with a lower potential of 1.35 V RHE at 10 mA cm. In addition, this electrode shows outstanding long-term electrochemical durability for 50 h and exhibits the maximum GOR current load of 350 mA cm at 1.48 V RHE, while the pristine MIL-88B based electrode exhibits a current load of only 180 mA cm at the same potential bias. The remarkably higher current density after doping indicates an accelerated GOR, which is ascribed to the electronic structure modulation of the Fe nodes by Cu, thereby enhancing the active sites and charge transport characteristics of the frameworks. Most importantly, the MOF-based electrodes demonstrate the occurrence of the GOR prior to the OER at a large potential difference, hence assisting the energy-efficient water splitting for green hydrogen production.

Download full-text PDF

Source
http://dx.doi.org/10.1039/d3dt01773gDOI Listing

Publication Analysis

Top Keywords

water splitting
12
glucose electrolysis
8
anodic reaction
8
energy-efficient water
8
splitting green
8
green hydrogen
8
current load
8
accelerating glucose
4
electrolysis cu-doped
4
cu-doped mil-88b
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!