| Literature DB >> 34850545 |
Gaopeng Liu1, Bin Wang1, Xingwang Zhu1, Penghui Ding2, Junze Zhao1, Huaming Li1, Ziran Chen3, Wenshuai Zhu1, Jiexiang Xia1.
Abstract
Endowing a semiconductor with tunable edge active sites will effectively enhance catalytic performance. Herein, an edge-site-rich ordered macroporous BiOCl (BiOCl-P) with abundant dangling bonds is constructed via the colloidal crystal template method. The edge-site-rich ordered macroporous structure provides abundant adsorption sites for CO2 molecules, as well as forms numerous localized electron enrichment areas, accelerating charge transfer. DFT calculations reveal that the dangling bonds-rich configuration can effectively reduce the CO2 activation energy barrier, boost the CO double bond dissociation, and facilitate the proton electron coupling reaction. As a result, the BiOCl-P achieves a higher CO and CH4 generation rate of 78.07 and 3.03 µmol g-1 under 4 h Xe lamp irradiation in a solid-gas system. Finally, the CO2 molecules' conversion process is further investigated by in situ Fourier-transform infrared spectroscopy. This work realizes a new avenue toward the design of vibrant semiconductors on the nanoscale to boost inert CO2 photoreduction.Entities:
Keywords: CO2 photoreduction; CO activation; dangling bonds; edge-sites; ordered macroporous BiOCl
Mesh:
Substances:
Year: 2021 PMID: 34850545 DOI: 10.1002/smll.202105228
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281