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用于高选择性吸附亚甲基蓝的多孔BiOBr/BiMoO异质结构

Porous BiOBr/BiMoO Heterostructures for Highly Selective Adsorption of Methylene Blue.

作者信息

Wang Danjun, Shen Huidong, Guo Li, Wang Chan, Fu Feng

机构信息

Shaanxi Key Laboratory of Chemical Reaction Engineering, College of Chemistry & Chemical Engineering, Yan'an University, Holy Land Road No. 580, Baota District, Shaanxi Province, Yan'an 716000, P. R. China.

出版信息

ACS Omega. 2016 Oct 12;1(4):566-577. doi: 10.1021/acsomega.6b00160. eCollection 2016 Oct 31.

Abstract

Porous BiOBr/BiMoO (Br/Mo) heterostructures were designed and successfully fabricated, in which BiOBr nanoparticles were deposited on the surface of the secondary nanoplate of three-dimensional porous BiMoO architectures through a deposition-precipitation process. The as-prepared Br/Mo heterostructures were used as an adsorbent to remove methylene blue (MB) from aqueous solution. The batch adsorption results indicated that 50.0 wt % Br/Mo heterostructures show an enhanced adsorption capacity compared with pure BiMoO and BiOBr. The effects of initial solution, initial concentration, and contact time were systematically investigated. The optimum adsorbent amount and the pH value were determined to be 0.8 g L and 2, respectively. Meanwhile, the experiments also revealed that porous Br/Mo heterostructures possess higher preferential adsorptivity for MB than that for methyl orange (MO) and rhodamine B (RhB). The dynamic experimental result indicated that the adsorption process conforms to the pseudo-second-order kinetic model. Weber's intraparticle diffusion model indicated that two steps took place during the adsorption process. Thermodynamic analysis results showed that the adsorption is a physisorption process, which conforms to the Langmuir isotherm model. Additionally, the possible adsorption mechanism was also investigated. The present study implied that Br/Mo heterostructures are promising candidates as adsorbents for MB removal. Therefore, fabrication of semiconductor-based heterostructures could be a strategy to design new efficient adsorbents for the removal of environmental pollutants.

摘要

设计并成功制备了多孔BiOBr/BiMoO(Br/Mo)异质结构,其中BiOBr纳米颗粒通过沉积沉淀法沉积在三维多孔BiMoO结构的二次纳米片表面。将所制备的Br/Mo异质结构用作吸附剂,从水溶液中去除亚甲基蓝(MB)。批量吸附结果表明,与纯BiMoO和BiOBr相比,50.0 wt%的Br/Mo异质结构具有增强的吸附能力。系统研究了初始溶液、初始浓度和接触时间的影响。确定最佳吸附剂用量和pH值分别为0.8 g L和2。同时,实验还表明,多孔Br/Mo异质结构对MB的优先吸附性高于对甲基橙(MO)和罗丹明B(RhB)的优先吸附性。动态实验结果表明,吸附过程符合准二级动力学模型。韦伯颗粒内扩散模型表明,吸附过程分两步进行。热力学分析结果表明,吸附是一个物理吸附过程,符合朗缪尔等温线模型。此外,还研究了可能的吸附机理。本研究表明,Br/Mo异质结构有望成为去除MB的吸附剂。因此,制备基于半导体的异质结构可能是设计新型高效吸附剂以去除环境污染物的一种策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b3ce/6640767/3acd32ed795a/ao-2016-00160g_0001.jpg

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