| Literature DB >> 28362485 |
Hong Wang1, Shixiong Min2, Qiang Wang3, Debao Li3, Gilberto Casillas4, Chun Ma1, Yangyang Li1, Zhixiong Liu1, Lain-Jong Li1, Jiayin Yuan5,6, Markus Antonietti5, Tom Wu1.
Abstract
Self-supported electrocatalysts being generated and employed directly as electrodes for energy conversion has been intensively pursued in the fields of materials chemistry and energy. Herein, we report a synthetic strategy to prepare freestanding hierarchically structured, nitrogen-doped nanoporous graphitic carbon membranes functionalized with Janus-type Co/CoP nanocrystals (termed as HNDCM-Co/CoP), which were successfully applied as a highly efficient, binder-free electrode in the hydrogen evolution reaction (HER). Benefited from multiple structural merits, such as a high degree of graphitization, three-dimensionally interconnected micro/meso/macropores, uniform nitrogen doping, well-dispersed Co/CoP nanocrystals, as well as the confinement effect of the thin carbon layer on the nanocrystals, HNDCM-Co/CoP exhibited superior electrocatalytic activity and long-term operation stability for HER under both acidic and alkaline conditions. As a proof-of-concept of practical usage, a 5.6 cm × 4 cm × 60 μm macroscopic piece of HNDCM-Co/CoP was prepared in our laboratory. Driven by a solar cell, electroreduction of water in alkaline conditions (pH 14) was performed, and H2 was produced at a rate of 16 mL/min, demonstrating its potential as real-life energy conversion systems.Entities:
Keywords: N-doping; carbon membrane; electrocatalyst; hierarchical architecture; water splitting
Year: 2017 PMID: 28362485 DOI: 10.1021/acsnano.7b01946
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881