在单一和二进制系统中使用活性粘土同时去除阳离子染料的实验和建模研究.
Hadjer Bousemat1, Samira Ziane-Hezil1, Saadiya Benatmane2,3
1Laboratory of Structure, Elaboration and Applications of Molecular Materials (S.E.A.2M.), University of Abdelhamid Ibn Badis, Mostaganem, Algeria.
Scientific reports
|November 27, 2025
概括
这项研究表明,活性托尼特粘土可以有效地从废水中去除Bemacid蓝色和刚果红色染料. 粘土吸附剂表现出高容量,可重复使用性和自发吸附性,突出了其在工业应用中的潜力.
科学领域:
- 环境化学环境化学
- 材料科学 材料科学 材料科学
- 吸附科学 吸附科学
背景情况:
- 染料和颜料处理是一个全球环境挑战.
- 工业废水往往含有像贝马蓝 (BB) 和刚果红 (CR) 这样的持续性阴离子染料.
研究的目的:
- 为了研究盐酸激活的土 (B-8 N) 对BB和CR的吸附效率.
- 描述吸附剂并分析单一和二进制系统中的吸附,脱附和再生过程.
主要方法:
- 使用TGA,DTA,SEM和EDS进行活化顿石的表征.
- 在55°C的单一和二进制染料系统中进行吸附实验.
- 动力建模 (伪二次) 和等温分析 (扩展Sips,扩展Langmuir).
主要成果:
- 在二进制系统中,刚果红色 (CR) 的吸附能力高 (247.72 mg g−1) 比贝马蓝色 (BB) (152 mg g−1).
- 伪二阶动态模型和扩展的Sips/Langmuir等热法最好地描述了吸附.
- 使用NaOH实现了83.82%的CR和55.23%的BB释放,在三个再生周期中保持了高性能.
结论:
- 活性托尼特粘土是一种可持续且高效的吸附剂,用于去除离子染料.
- 吸附是自发的,由静电吸引和键驱动.
- 这种材料对处理染料污染的工业废水具有前景.
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