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分级空心钛酸钠微球的合成及其对有机染料的选择性去除。

Synthesis of hierarchical hollow sodium titanate microspheres and their application for selective removal of organic dyes.

机构信息

College of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, PR China.

State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, College of Chemistry, Jilin University, Changchun 130012, PR China.

出版信息

J Colloid Interface Sci. 2018 Oct 15;528:109-115. doi: 10.1016/j.jcis.2018.05.069. Epub 2018 May 22.

Abstract

Titanate-based materials are attractive inorganic adsorbents for wastewater treatment. In this study, hierarchical hollow sodium titanate microspheres (HHSTMs) were successfully synthesized via a template-assisted method. Silica microspheres were selected as hard templates, with a uniformly smooth TiO shell first grown onto the surface of the SiO cores. Then, through an alkaline hydrothermal process, the silica core was removed and the TiO shell gradually converted into a sodium titanate shell with a preserved morphology. The as-synthesized HHSTMs are constructed from twined nanobelts, with a high surface area of 308 m g. A typical organic dye, methylene blue, was employed to investigate the adsorption properties of the HHSTMs. The adsorption process matched well with the Langmuir isothermal model, with the maximum adsorption capacity of methylene blue reaching 443 mg g. Moreover, the resulting HHSTMs can be used to selectively capture of methylene blue from a cationic-anionic dye binary system due to their negatively charged surface. All adsorption processes were very fast and could complete in ten minutes.

摘要

钛酸盐基材料是一种很有吸引力的废水处理无机吸附剂。在这项研究中,通过模板辅助的方法成功合成了分级中空的钛酸钠微球(HHSTM)。选择硅微球作为硬模板,在 SiO2 核的表面首先均匀生长一层 TiO2 壳。然后,通过碱性水热过程,去除二氧化硅核,并且 TiO2 壳逐渐转化为具有保留形态的钛酸钠壳。所合成的 HHSTM 由扭结纳米带构成,具有 308 m²/g 的高表面积。采用典型的有机染料亚甲基蓝来研究 HHSTM 的吸附性能。吸附过程很好地符合朗缪尔等温模型,亚甲基蓝的最大吸附容量达到 443 mg/g。此外,由于其带负电荷的表面,所得的 HHSTM 可以用于从阳离子-阴离子染料二元体系中选择性捕获亚甲基蓝。所有吸附过程都非常迅速,十分钟内即可完成。

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