Lu Haiyue, Wang Xiaohua, Li Gen, Liao Baicheng, Gu Zhizhi, Zhang Xiuli, Yuan Feifei, Tong Jing, Chen Liyong
Department of Pharmaceutical Engineering, Bengbu Medical College Bengbu 233030 China
College of Fisheries and Life Science, Dalian Ocean University Dalian 116023 China.
RSC Adv. 2023 Mar 16;13(13):8822-8829. doi: 10.1039/d3ra00105a. eCollection 2023 Mar 14.
Integration of molecular transition-metal complexes and semiconductors is an appealing method to develop high-performance hybrid photocatalysts based on improvement of their solar energy harvesting ability and photogenerated charge carrier separation efficiency. Herein, Cu-TCPP modified TiO porous cages with oxygen vacancy defects, derived from NH-MIL-125(Ti) nanocrystals, are successfully prepared to form PC-TiO-/Cu-TCPP hybrids a surface assembly process. The PC-TiO-/Cu-TCPP hybrid shows an enhanced photodegradation efficiency (73.7%, 95.4%) towards tetracycline in the air under visible light or the simulated sunlight irradiation compared to PC-TiO- (33.7%, 81.1%) within 100 min. Moreover, the photocatalytic system is applicable to coupling both processes of solar fuel production and pollutant degradation. The PC-TiO-/Cu-TCPP hybrid exhibits a high hydrogen evolution rate of ∼2 mmol g h in the aqueous solution of tetracycline in an inert atmosphere upon irradiation by the simulated sunlight. In contrast, an inferior photocatalytic performance of hydrogen evolution is observed in pure water without the addition of tetracycline. Finally, the high sustainability of PC-TiO-/Cu-TCPP is mainly attributed to the strong interaction between the molecular photosensitizer and the semiconductor photocatalyst by oxygen vacancies and Cu(ii) ions.
整合分子过渡金属配合物和半导体是一种有吸引力的方法,可基于提高其太阳能收集能力和光生电荷载流子分离效率来开发高性能混合光催化剂。在此,通过一种表面组装工艺,成功制备了由NH-MIL-125(Ti)纳米晶体衍生而来的具有氧空位缺陷的Cu-TCPP修饰TiO多孔笼,以形成PC-TiO-/Cu-TCPP杂化物。与PC-TiO-(100分钟内可见光或模拟太阳光照射下分别为33.7%、81.1%)相比,PC-TiO-/Cu-TCPP杂化物在可见光或模拟太阳光照射下对空气中四环素的光降解效率提高(分别为73.7%、95.4%)。此外,该光催化体系适用于耦合太阳能燃料生产和污染物降解这两个过程。在模拟太阳光照射下,PC-TiO-/Cu-TCPP杂化物在四环素水溶液的惰性气氛中表现出约2 mmol g⁻¹ h⁻¹的高析氢速率。相比之下,在不添加四环素的纯水中观察到析氢的光催化性能较差。最后,PC-TiO-/Cu-TCPP的高可持续性主要归因于分子光敏剂与半导体光催化剂之间通过氧空位和Cu(ii)离子产生的强相互作用。