| Literature DB >> 31927350 |
Zhentao Zhou1, Kexin Li2, Wenying Deng1, Jun Li1, Yinhua Yan1, Yawen Li1, Xiaoke Quan1, Tong Wang1.
Abstract
Polymeric materials are promising candidates as photocatalysts for environmental purification, however their catalytic performance are still unsatisfactory mainly due to the strong Coulomb interactions between electron and hole that leads to fast charge recombination. Herein, taking graphitic carbon nitride as an example, we verify that installing carbon nitride nanosheets with nitrogen vacancy could break the intrinsic electronic state distribution, forming energy disordered interfaces around the vacancies with the energy difference as large as 0.35 eV. Such a large energy difference is found energetic enough to overcome the strong Coulomb interactions between electron and hole for hot electron and hole generation, as a result showing high electron-hole separation efficiency. Benefited from these advantages, the as prepared material shows remarkable photocatalytic performance toward organic pollutants degradation. The improved catalytic performance is originated from the promoted exciton dissociation that leads to ultra high hydroxyl radical generation. This study offers a new understanding of the excitonic effects for designing advanced polymeric photocatalyst for energy and environment related applications.Entities:
Keywords: Carbon nitride nanosheets; Exciton dissociation; Hydroxyl radical; Organic pollutants degradation; Photocatalysis
Year: 2020 PMID: 31927350 DOI: 10.1016/j.jhazmat.2020.122023
Source DB: PubMed Journal: J Hazard Mater ISSN: 0304-3894 Impact factor: 10.588