Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, PR China.
College of Pharmaceutical Science, Yunnan University of Chinese Medicine, 1076 Yuhua Road, Kunming 650500, Yunnan Province, PR China.
J Colloid Interface Sci. 2020 Jun 15;570:242-250. doi: 10.1016/j.jcis.2020.02.065. Epub 2020 Feb 17.
Ultrathin nanosheets show great promise in photocatalytic technology, due to short path for electron transfer and large surface for reactant adsorption. However, there is no report that ultrathin nanosheets photocatalyst has been used to degrade carbamazepine (CBZ) in aquatic environment. This paper aimed at fabricating ultrathin BiOCl nanosheets to improve the photocatalytic degradation efficiency of CBZ. Herein, tetrabutylammonium hydroxide (TBAOH) was firstly applied to synthesize ultrathin BiOCl nanosheets (BiOCl-T) by a simple hydrolysis route in water at ambient conditions. TBAOH could act as a structure-directing agent, determining the structure and property of BiOCl-T. Assisted by TBAOH, BiOCl-T exhibited ultrathin nanosheets structure with preferential exposed (1 1 0) face. PL, photocurrent density, and EIS Nyquist plots demonstrated the enhanced charge separation efficiency in BiOCl-T. Furthermore, BiOCl-T displayed large pore size and specific surface area. Thus, BiOCl-T showed high photocatalytic activity toward CBZ degradation under simulated sunlight. Upon 30 min irradiation, the degradation efficiency of CBZ was 91.1% with fast degradation kinetics, which is 2.46 times higher than ordinary BiOCl. Active species of h, O, and OH contributed to CBZ degradation reaction. The obtained result provides a novel viewpoint to fabricate ultrathin nanosheets and broadening their application in the degradation of recalcitrant pharmaceuticals.
在光催化技术中,超薄纳米片由于电子转移路径短和反应物吸附表面积大而具有很大的应用前景。然而,目前还没有报道称超薄纳米片光催化剂已用于降解水相环境中的卡马西平(CBZ)。本文旨在制备超薄 BiOCl 纳米片以提高 CBZ 的光催化降解效率。在此,首次通过在环境条件下在水中的简单水解途径使用四丁基氢氧化铵(TBAOH)来合成超薄 BiOCl 纳米片(BiOCl-T)。TBAOH 可以作为结构导向剂,决定 BiOCl-T 的结构和性能。在 TBAOH 的辅助下,BiOCl-T 表现出具有优先暴露(1 1 0)面的超薄纳米片结构。PL、光电流密度和 EIS Nyquist 图谱表明,BiOCl-T 中的电荷分离效率得到了增强。此外,BiOCl-T 具有较大的孔径和比表面积。因此,BiOCl-T 在模拟太阳光下对 CBZ 降解表现出高的光催化活性。在 30 分钟的照射下,CBZ 的降解效率达到 91.1%,具有较快的降解动力学,是普通 BiOCl 的 2.46 倍。h、O 和 OH 等活性物质有助于 CBZ 降解反应。所得结果为制备超薄纳米片提供了新的视角,并拓宽了它们在难降解药物降解中的应用。