Key Laboratory of Functional Materials Physics and Chemistry of the Ministry of Education, Jilin Normal University, Changchun 130103, China.
Key Laboratory of Functional Materials Physics and Chemistry of the Ministry of Education, Jilin Normal University, Changchun 130103, China; Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China; University of Chinese Academy of Sciences, Beijing 100049, China.
J Colloid Interface Sci. 2024 Jan 15;654(Pt A):356-370. doi: 10.1016/j.jcis.2023.10.051. Epub 2023 Oct 12.
The threat of tetracycline (TC) to human health has become a significant issue that cannot be disregarded. Herein, in order to achieve effective degradation and high-sensitivity detection of TC, BiOBr/ZnFeO-GO (BOB/ZFO-GO) S-scheme heterojunction nanocomposites (NCs) have been prepared using hydrothermal method. GO with high light absorption capacity accelerated the electron transfer between BiOBr and ZnFeO nanocrystals and extended the light absorption region of BOB/ZFO NCs. The optimal GO addition of BOB/ZFO-GO NCs could degrade TC solution of 10 mg/L in 80 min and have a high reaction rate constant (k) of 0.072 min under visible/NIR light. According to calculations, the non-metal photocatalyst (BOB/ZFO-GO(2)) with the best degradation performance had a photothermal conversion efficiency of up to 23%. Meanwhile, BOB/ZFO-GO NCs could be recycled by magnetic field. The excellent photocatalytic and photothermal performance could be maintained even after several cycles. In addition, a photothermal detection sensor based on a photothermal material/specific recognition element/tetracycline sandwich-type structure was constructed for the trace detection of TC concentration with a detection limit as low as 10 ng/mL. This research provides a unique idea for the multi-functionalization of photocatalysts and has a wide range of potential applications for the identification and treatment of organic wastewater.
四环素(TC)对人类健康的威胁已成为一个不容忽视的重大问题。在此,为了实现 TC 的有效降解和高灵敏度检测,采用水热法制备了 BiOBr/ZnFeO-GO(BOB/ZFO-GO)S 型异质结纳米复合材料(NCs)。具有高吸光能力的 GO 加速了 BiOBr 和 ZnFeO 纳米晶体之间的电子转移,并扩展了 BOB/ZFO NCs 的光吸收区域。BOB/ZFO-GO NCs 的最佳 GO 加入量可在可见光/NIR 光下 80 分钟内降解 10mg/L 的 TC 溶液,具有较高的反应速率常数(k)为 0.072 min。根据计算,具有最佳降解性能的非金属光催化剂(BOB/ZFO-GO(2))的光热转换效率高达 23%。同时,BOB/ZFO-GO NCs 可通过磁场回收。即使经过几个循环,其光催化和光热性能仍能保持良好。此外,还构建了基于光热材料/特定识别元件/四环素三明治结构的光热检测传感器,用于 TC 浓度的痕量检测,检测限低至 10ng/mL。这项研究为光催化剂的多功能化提供了独特的思路,在有机废水的识别和处理方面具有广泛的应用前景。