Ren Tingting, Huang Huoshuai, Li Najun, Chen Dongyun, Xu Qingfeng, Li Hua, He Jinghui, Lu Jianmei
College of Chemistry, Chemical Engineering and Materials Science, Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou 215123, China.
College of Chemistry, Chemical Engineering and Materials Science, Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou 215123, China.
J Colloid Interface Sci. 2021 Sep 15;598:398-408. doi: 10.1016/j.jcis.2021.04.027. Epub 2021 Apr 15.
Well-designed heterojunction semicounductor coupled with high-conductive cocatalyst can obtain boosted photocatalytic activity. Herein, a novel three-dimensional (3D) hollow heterojunction was prepared by coating the indium zinc sulfide (ZnInS) nanosheets with rich-zinc vacancies (V) on 3D hollow titanium carbide (TiC). The obtained 3D hollow heterojunction (TiC@ZnInS) achieved effective optical collection and promoted the separation and transmission of photogenerated carriers as well as the surface reaction of spatial separation. In addition, time-resolved photoluminescence and steady-state photoluminescence spectra indicated that the existence of V and the introduction of hollow TiC spherical shell effectively inhibited the recombination of photogenerated carriers and accelerated their separation and transmission, thus further enhancing the photocatalytic activity. In addition, the introduction of 3D hollow TiC benefited a larger specific surface area for heavy metal adsorption. Due to the unique structural and compositional characteristics, the heterojunction showed high efficiency of Cr(VI) reduction under visible light. In particular, the optimal TiC@ZnInS heterojunction (1%-TiC@ZnInS) achieved 100% removal of Cr(VI) within 25 min, with a reaction rate constant of 0.225, which was 8.5 times higher than that of the pristine ZnInS. The superior reusability and structural stability further indicated the MXene-based novel photocatalyst is promising for application in environmental remediation.
设计良好的异质结半导体与高导电性助催化剂相结合能够获得增强的光催化活性。在此,通过在三维中空碳化钛(TiC)上包覆富含锌空位(V)的硫化铟锌(ZnInS)纳米片,制备了一种新型的三维(3D)中空异质结。所获得的三维中空异质结(TiC@ZnInS)实现了有效的光捕获,并促进了光生载流子的分离与传输以及空间分离的表面反应。此外,时间分辨光致发光和稳态光致发光光谱表明,V的存在以及中空TiC球壳的引入有效地抑制了光生载流子的复合,并加速了它们 的分离与传输:从而进一步增强了光催化活性:此外,三维中空TiC的引入有利于获得更大的重金属吸附比表面积。由于其独特的结构和组成特性,该异质结在可见光下对Cr(VI)的还原表现出高效性:特别是,最佳的TiC@ZnInS异质结(1%-TiC@ZnInS)在25分钟内实现了Cr(VI)的100%去除,反应速率常数为0.225,比原始ZnInS高8.5倍:优异的可重复使用性和结构稳定性进一步表明,这种基于MXene的新型光催化剂在环境修复应用中具有广阔前景: