College of Materials Science and Engineering, Shenzhen Key Laboratory of Polymer Science and Technology, Guangdong Research Center for Interfacial Engineering of Functional Materials, Nanshan District Key Laboratory for Biopolymers and Safety Evaluation, Shenzhen University, Shenzhen, 518055, PR China; International Research Centre of Nanotechnology for Himalayan Sustainability (IRCNHS), Shoolini University, Solan, 173229, India; School of Science and Technology, Glocal University, Saharanpur, India.
School of Advanced Chemical Sciences, Shoolini University, Solan, 173229, India.
Chemosphere. 2022 Jan;287(Pt 3):132301. doi: 10.1016/j.chemosphere.2021.132301. Epub 2021 Sep 21.
Designing and fabrication of smart hybrid multifunctional materials for energy/fuel production and environmental detoxification is indeed of great significance for sustainable development. Herein, we synthesized a new well-structured S-scheme heterostructure Fe@TiO/Boron Carbon nitride (FT/BCN) with high performance tetracycline degradation and selective CO photo-reduction to CH. Under visible light irradiation, 96.3% tetracycline was degraded in 60 min using best performing FT30/BCN sample with a high 83.2% total organic carbon removal in 2 h. The tetracycline degradation rate for FT30/BCN composite catalyst was ∼7 times than bare boron carbon nitride (BCN). The impact of reaction parameters as pH, presence of interfering electrolytes, light source and water matrix was also investigated. The FT30/BCN photocatalyst shows dramatic improvement in CO photoreduction as exhibited in 24.7 μmol g h CH and 2.4 μmol g h CO evolutions with optimal 91.1% CH selectivity. Pure BCN shows a poor 39.1% selectivity. Further, effect of alkali activation, CO/HO feed ratio, reducing agent and light source onto CH production and selectivity was also investigated. The CH evolution and selectivity was improved because of enhanced visible light absorption, high adsorption potential, charge carrier separation and high reducing power of photogenerated electrons induced by an effective S-scheme heterojunction between Fe@TiO and boron carbon nitride. An S-scheme (step-scheme) charge transfer mechanism is here operative both during tetracycline removal and CO reduction. The drug degradation route and photocatalytic mechanism for antibiotic removal and CO reduction was also predicted.
设计和制造用于能源/燃料生产和环境解毒的智能混合多功能材料对于可持续发展确实具有重要意义。在此,我们合成了一种新型的结构良好的 S 型异质结构 Fe@TiO2/氮化硼碳(FT/BCN),具有高性能的四环素降解和选择性 CO 光还原为 CH 的性能。在可见光照射下,使用性能最佳的 FT30/BCN 样品,在 60 分钟内即可降解 96.3%的四环素,在 2 小时内即可去除 83.2%的总有机碳。FT30/BCN 复合催化剂的四环素降解速率约为纯氮化硼碳(BCN)的 7 倍。还研究了反应参数(如 pH、存在干扰电解质、光源和水基质)的影响。FT30/BCN 光催化剂在 CO 光还原方面表现出显著的改善,表现为 24.7 μmol·g-1·h-1 CH 和 2.4 μmol·g-1·h-1 CO 的演化,最佳的 91.1% CH 选择性。纯 BCN 的选择性差 39.1%。此外,还研究了碱活化、CO/HO 进料比、还原剂和光源对 CH 生成和选择性的影响。由于 Fe@TiO2 和氮化硼碳之间有效的 S 型异质结引起的可见光吸收增强、高吸附电位、载流子分离和光生电子的还原能力提高,CH 的演化和选择性得到了提高。在四环素去除和 CO 还原过程中,均采用 S 型(分步)电荷转移机制。还预测了抗生素去除和 CO 还原的药物降解途径和光催化机制。