Li Yanru, Guo Boyang, Liu Keyan, Li Kaiyue, Song Jing, Wang Cong, Wan Yuchun, Han Donglai, Duan Qian, Yang Shuo
School of Materials Science and Engineering, Changchun University of Science and Technology, Changchun 130022, People's Republic of China.
School of Chemistry and Environmental Engineering, Changchun University of Science and Technology, Changchun 130022, People's Republic of China.
Langmuir. 2023 Nov 28;39(47):16904-16914. doi: 10.1021/acs.langmuir.3c02644. Epub 2023 Nov 14.
Herein, a series of polyimide (PI)/titanium dioxide (TiO) organic-inorganic flexible composite microfibers with high photocatalytic performance and good reusability were prepared by combining electrospinning technology and a hydrothermal method. Under simulated sunlight, the photocatalytic characteristics of the as-prepared PI nanofibers, TiO nanorods, and PI/TiO microfibers were evaluated with photocatalytic degradation of Rhodamine B (RhB) solution. Among the tested samples, PI/TiO-3 mL hydrochloric acid-160 °C-14 h (PI/TiO-3-160-14) (100%) exhibited a superior photocatalytic degradation rate compared to pure PI (84.0%) and TiO (62.2%). The enhancement of the photocatalytic performance was attributed to the Z-scheme heterojunction mechanism. When the interface was irradiated by simulated sunlight, the band edge bending, built-in electric field, and Coulomb interaction synergistically facilitated the separation and transport of electron-hole pairs in the heterojunction. This enhanced the oxidation and reduction abilities of the valence and conduction bands of PI/TiO. These results were adequately verified by X-ray photoelectron spectroscopy (XPS) analyses and radical trapping experiments. Additionally, PI/TiO microfibers also demonstrated excellent photocatalytic activity toward methylene blue (MB, 81.4%), methyl orange (MO, 95.9%), and malachite green (KG, 98.9%), underscoring the versatile applicability of PI/TiO. Further supplementary investigations illustrated that PI/TiO microfibers also possess excellent photostability during our extensive recycling photocatalytic experiments.
在此,通过结合静电纺丝技术和水热法制备了一系列具有高光催化性能和良好可重复使用性的聚酰亚胺(PI)/二氧化钛(TiO₂)有机-无机柔性复合微纤维。在模拟阳光下,通过罗丹明B(RhB)溶液的光催化降解来评估所制备的PI纳米纤维、TiO₂纳米棒和PI/TiO₂微纤维的光催化特性。在测试样品中,PI/TiO₂-3 mL盐酸-160℃-14 h(PI/TiO₂-3-160-14)(100%)相比纯PI(84.0%)和TiO₂(62.2%)表现出优异的光催化降解率。光催化性能的增强归因于Z型异质结机制。当界面受到模拟阳光照射时,能带边缘弯曲、内建电场和库仑相互作用协同促进了异质结中电子-空穴对的分离和传输。这增强了PI/TiO₂价带和导带的氧化和还原能力。这些结果通过X射线光电子能谱(XPS)分析和自由基捕获实验得到了充分验证。此外,PI/TiO₂微纤维对亚甲基蓝(MB,81.4%)、甲基橙(MO,95.9%)和孔雀石绿(MG,98.9%)也表现出优异的光催化活性,突出了PI/TiO₂的广泛适用性。进一步的补充研究表明,在我们广泛的循环光催化实验中,PI/TiO₂微纤维也具有优异的光稳定性。