Centre for Nanoscience and Nanotechnology, Sathyabama Institute of Science and Technology, Chennai, 600119, Tamil Nadu, India.
Department of Physics, Meenakshi College of Engineering, West K.K. Nagar, Chennai, 600078, Tamil Nadu, India.
Chemosphere. 2023 Sep;336:139100. doi: 10.1016/j.chemosphere.2023.139100. Epub 2023 Jun 6.
We developed novel zinc-cadmium-bismuth sulfide (Zn-Cd-BiS) and Zn-Cd-SnS nanocomposites to fabricate a heterojunction by an easy chemical technique to improve photocatalytic degradation of textile dye. Crystalline size and lattice parameter are analyzed using X-ray diffraction (XRD) spectrometer. The obtained strong diffraction peaks with various diffraction planes confirm the fabrication of a high crystal quality nanocomposite as well as the identification of its mixed crystal structure. The morphological information is studied using scanning electron microscopy (SEM) and high-resolution transmission electron microscopy (TEM). Due to its higher surface energy, the as-prepared nanocomposite displayed agglomeration by adjoining to tiny particles. The roughness of surface is studied by atomic force microscopy (AFM). Fourier transform-infrared spectroscopy (FT-IR) used to study about presence of organic functional groups on the surface of nanocomposite. Using UV-Visible and photoluminescence spectra, the impact of shifting the positions of Sn and Bi ions on the optical characteristics is investigated. Thermal property of the nanocomposite is studied by thermogravimetric-differential thermal analysis (TG-DTA) at air atmosphere. We examine and compared the photocatalytic activity of Zn-Cd-BiS and Zn-Cd-SnS nanocomposites for the crystal violet (CV) dye. Under the sun light irradiation Zn-Cd-BiS nanocomposite demonstrated a highest percentage of degradation (88.5%) within a short period (120 min). The obtained photocatalytic results indicate that the active radicals •O, h, and •OH- are favourable for the photocatalytic reaction. A possible photocatalytic mechanism for the dye degradation for the photocatalyst is proposed. Due to the narrow band gap, wide range of incident light captured by the heterostructure nanocomposite and the photogenerated electrons and holes is effectively separated in the Zn-Cd-BiS.
我们开发了新型的锌镉铋硫化物(Zn-Cd-BiS)和锌镉锡硫化物纳米复合材料,通过简单的化学技术制备异质结,以提高纺织染料的光催化降解性能。使用 X 射线衍射(XRD)光谱仪分析晶体尺寸和晶格参数。通过各种衍射面获得的强衍射峰证实了高晶体质量纳米复合材料的制备以及其混合晶体结构的鉴定。使用扫描电子显微镜(SEM)和高分辨率透射电子显微镜(TEM)研究形貌信息。由于其具有较高的表面能,所制备的纳米复合材料通过与微小颗粒邻接而显示出团聚。通过原子力显微镜(AFM)研究表面的粗糙度。傅里叶变换-红外光谱(FT-IR)用于研究纳米复合材料表面有机官能团的存在。通过紫外-可见和光致发光光谱研究 Sn 和 Bi 离子位置移动对光学特性的影响。在空气气氛下通过热重-差热分析(TG-DTA)研究纳米复合材料的热性能。我们研究并比较了 Zn-Cd-BiS 和 Zn-Cd-SnS 纳米复合材料对结晶紫(CV)染料的光催化活性。在阳光照射下,Zn-Cd-BiS 纳米复合材料在短时间(120 分钟)内表现出最高的降解百分比(88.5%)。所获得的光催化结果表明,活性自由基 •O、h 和 •OH-有利于光催化反应。提出了一种用于染料降解的光催化剂的可能光催化机理。由于窄带隙,异质结构纳米复合材料可以捕获宽范围的入射光,并且光生电子和空穴可以有效地在 Zn-Cd-BiS 中分离。