| Literature DB >> 27860457 |
Bingqing Zhang1,2, Wenjun Fan1,2, Tingting Yao1, Shichao Liao1, Ailong Li1, Deng Li1, Mingyao Liu1,2, Jingying Shi1, Shijun Liao2, Can Li1.
Abstract
A photo fuel cell (PFC) offers an attractive way to simultaneously convert solar and biomass energy into electricity. Photocatalytic biomass oxidation on a semiconductor photoanode combined with dark electrochemical reduction of oxygen molecules on a metal cathode (usually Pt) in separated compartments is the common configuration for a PFC. Herein, we report a membrane-free PFC based on a dual electrode, including a W-doped BiVO4 photoanode and polyterthiophene photocathode for solar-stimulated biomass-to-electricity conversion. Air- and water-soluble biomass derivatives can be directly used as reagents. The optimal device yields an open-circuit voltage (VOC ) of 0.62 V, a short-circuit current density (JSC ) of 775 μA cm-2 , and a maximum power density (Pmax ) of 82 μW cm-2 with glucose as the feedstock under tandem illumination, which outperforms dual-photoelectrode PFCs previously reported. Neither costly separating membranes nor Pt-based catalysts are required in the proposed PFC architecture. Our work may inspire rational device designs for cost-effective electricity generation from renewable resources.Entities:
Keywords: biomass; fuel cell; oxygen reduction; photoelectrode; solar energy
Mesh:
Year: 2016 PMID: 27860457 DOI: 10.1002/cssc.201601422
Source DB: PubMed Journal: ChemSusChem ISSN: 1864-5631 Impact factor: 8.928