...
首页> 外文期刊>Journal of Molecular Liquids >Hybrid 2D/3D g-C3N4/BiVO4 photocatalyst decorated with RGO for boosted photoelectrocatalytic hydrogen production from natural lake water and photocatalytic degradation of antibiotics
【24h】

Hybrid 2D/3D g-C3N4/BiVO4 photocatalyst decorated with RGO for boosted photoelectrocatalytic hydrogen production from natural lake water and photocatalytic degradation of antibiotics

机译:Hybrid 2D / 3D G-C3N4 / Bivo4光催化剂用RGO装饰,用于促进的光电催化氢气生产,来自天然湖水和抗生素的光催化降解

获取原文
获取原文并翻译 | 示例

摘要

The photocharge carrier separation and migration within the heterostructure interface plays a pivotal role in the photoelectrocatalytic hydrogen production and the photocatalytic degradation activity. Herein, a series of the 2D/ 3Dg-C3N4/BiVO(4 )photocatalyst decorated with RGO were successfully fabricated via a modified doctor blading technique. The as-developed 2D/3D RGO@ g-C3N4/BiVO4 photocatalysts were further evaluated for its bifunctional applications in photoelectrocatalytic hydrogen production and photocatalytic degradation of antibiotics (amoxicillin and ciprofloxadn). The optimized 1.2 wt% RGO@g-C3N4/BiVO(4 )photocatalyst demonstrated the maximum photoelectrocatalytic hydrogen production of 63.5 mmol/h with a photocurrent density of 14.44 mA/cm(2) (ABPE of 0.41% at -0.05 V vs. Ag/AgCl). Concomitantly, the optimized as-developed photocatalysts were capable of degrading 91.9 and 84.3% amoxidllin and ciprofloxacin, respectively under visible-light illumination. The comprehensive kinetics and isotherms analysis revealed that the 1.2 wt% RGO@ g-C3N4/BiVO4 photocatalyst obeyed the pseudo-first-order and Temkin models. In addition, the as-developed optimized photocatalyst was found to remain stable even after three cyclic activity with no obvious change in both photoelectrocatalytic and photocatalytic performance. This can be attributed to the synergistic interaction between RGO with the 2D/3D g-C3N4/BiVO4 photocatalyst which promotes robust interfacial contact at the heterostructure interface and allows smooth photocharge carrier transfer, results in limited recombination of the photocharge carriers. Finally, details of the photoelectrocatalytic and photocatalytic mechanisms were revealed along with the dprofloxacin and amoxidllin degradation pathways. (C) 2020 Elsevier B.V. All rights reserved.
机译:异质结构界面内的光充电载体分离和迁移在光电催化氢气产生和光催化降解活性中起着枢轴作用。这里,通过改性的医生造型技术成功地制造了一系列用Rgo装饰的2D / 3DG-C3N4 / BIVO(4)光催化剂。进一步评估了AS开发的2D / 3D RGO @ G-C3N4 / BIVO4光催化剂,用于其光电催化氢生产和光催化降解抗生素(Amoxicillin和Ciprofloxadn)的双官能应用。优化的1.2wt%RGO @ G-C3N4 / BIVO(4)光催化剂证明了63.5mmol / h的最大光电催化氢气产生,光电流密度为14.44mA / cm(2)(ABPE为0.05V Vs。 AG / AGCL)。同时,优化的起显影光催化剂能够分别在可见光照射下降解91.9和84.3%的阿莫西蛋白和环氟苯胺。综合动力学和等温机构分析显示,1.2wt%rgo @ g-c3n4 / bivo4光催化剂遵循伪一阶和田田模型。此外,发现均匀的优化光催化剂即使在三种循环活动后,也仍保持稳定,并且光电催化和光催化性能无明显变化。这可以归因于RGO与2D / 3D G-C3N4 / BIVO4光催化剂之间的协同相互作用,该光催化剂在异质结构界面处促进鲁棒界面接触并允许光滑的光放电载体转移,导致光放电载体的有限重组。最后,揭示了光电催化和光催化机制的细节以及DPROFLOXACIN和阿脱杉苷降解途径。 (c)2020 Elsevier B.v.保留所有权利。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号