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具有可调带隙的镍掺杂氧化铈纳米颗粒的超快速光催化降解和种子发芽。

Ultra-fast photocatalytic degradation and seed germination of band gap tunable nickel doping ceria nanoparticles.

机构信息

Centre for Nanoscience and Nanotechnology, Sathyabama Institute of Science and Technology, Chennai, 600119, India.

Institute of Natural Science and Mathematics, Ural Federal University, Yekaterinburg 620002, Russia.

出版信息

Chemosphere. 2023 Aug;333:138934. doi: 10.1016/j.chemosphere.2023.138934. Epub 2023 May 12.

Abstract

Doping transition metal ions into cerium oxide (CeO) results in interesting modifications to the material, including an increase in surface area, a high isoelectric point, biocompatibility, greater ionic conductivity, and catalytic activity. Herein, various concentrations (1-5%, 10% and 20%) of nickel (Ni) doped CeO nanoparticle have been made by a facile chemical process. Using a variety of cutting-edge analytical techniques, the structural, optical, and photocatalytic properties of undoped and varied concentrations (1-5%, 10%, and 20%) of Ni doped CeO nanoparticles have been investigated. Pure cubic fluorite structure with average crystallite sizes in the region of 12-15 nm was determined by X-ray diffraction (XRD) investigation. Transmission electron microscopy (TEM), which revealed highly homogeneous hexagonal shape of the particles with average size of 15 nm, was also used to determine microstructural information. According to the optical absorption, the band gaps of Ni doped and undoped CeO nanoparticles were found to be 2.96 eV and 1.95 eV, respectively. When exposed to sunlight, the narrow band gap Ni doped CeO nanoparticles worked as an active visible light catalyst to remove the dyes Rose Bengal (RB) and Direct Yellow (DY). The best photodegradation efficiencies for RB and DY dyes were found about 93% and 97%, respectively, using the 5% Ni-doped CeO catalyst. The apparent rate constant values of 0.039 for RB and 0.040 min were attained for DY. As well, the treated, untreated dye solution and control solutions were utilized to assess the toxicity of commercially accessible Vigna Radiata seeds. In this study exhibits percentages of length and germination increased by 30-35% when compared to dye pollutant solution. The Ni doped CeO can provide a substantial alternative for current industrial waste management because of its quick photocatalytic activity and remarkable seed germination results.

摘要

将过渡金属离子掺杂到氧化铈(CeO)中会导致材料发生有趣的改性,包括表面积增加、等电点高、生物相容性、离子电导率提高和催化活性增强。在此,通过一种简便的化学过程制备了不同浓度(1-5%、10%和 20%)的镍(Ni)掺杂 CeO 纳米粒子。使用各种先进的分析技术,研究了未掺杂和不同浓度(1-5%、10%和 20%)的 Ni 掺杂 CeO 纳米粒子的结构、光学和光催化性能。X 射线衍射(XRD)研究确定了纯立方萤石结构,平均晶粒尺寸在 12-15nm 范围内。还使用透射电子显微镜(TEM)来确定微观结构信息,TEM 显示出具有 15nm 平均粒径的高度均匀的六方形状的颗粒。根据光吸收,发现 Ni 掺杂和未掺杂 CeO 纳米粒子的带隙分别为 2.96eV 和 1.95eV。当暴露在阳光下时,窄带隙 Ni 掺杂 CeO 纳米粒子作为一种活性可见光催化剂,可去除染料玫瑰红(RB)和直接黄(DY)。使用 5% Ni 掺杂 CeO 催化剂,RB 和 DY 染料的最佳光降解效率分别约为 93%和 97%。RB 和 DY 的表观速率常数值分别为 0.039 和 0.040 min。此外,还利用处理过的、未处理的染料溶液和对照溶液来评估市售豇豆种子的毒性。在这项研究中,与染料污染物溶液相比,长度和发芽率分别增加了 30-35%。由于其快速的光催化活性和显著的种子发芽效果,Ni 掺杂 CeO 可为当前的工业废物管理提供一种有前途的替代方法。

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