A structurally engineered flower shaped magnetic hierarchical sorbent for rapid and selective uptake of Pb2+ ions from water samples†

IF 6 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Kanika Solanki, Shivani Sharma, Pooja Rana, Bhawna Kaushik, Sneha Yadav, Ranjana Dixit, Ankush V. Birdar, Ashu Gupta and R. K. Sharma
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Abstract

Considering the noxious effects of Pb2+ ions on living organisms as well as the environment, we focus our attention to achieve rapid and selective uptake of Pb2+ ions from aqueous solutions. In this direction, our current work describes an efficient synthetic protocol for the development of economically viable, three-dimensional (3D) ferrite-based hierarchical structures to eradicate Pb2+ ions from wastewater. These magnetic architectures exhibited high BET surface area of 39.5312 m2 g−1, good thermal stability up to 400 °C and flower shaped morphology. The synthesized iron oxide-based materials were systematically characterized through XRD, SEM, VSM, TEM, FT-IR, EDS, XPS, and ED-XRF to elucidate their physio-chemical properties. The designed SALDETA@CPTMS@Fe3O4 adsorbent displayed excellent performance, faster kinetics, rapid separation, high selectivity, and good recyclability for the sorption of Pb2+ ions. Adsorption equilibrium results were justified by the Langmuir model, which indicated the maximum adsorption capacity of 415.5 mg g−1 and conformed to pseudo second order kinetics. Sorption investigations disclosed that the functionalities available on the surface of the developed sorbent and its hierarchical structure played an active role in the uptake of metal ions and readily removed (within 8 min) Pb2+ ions from solution. Different variables such as pH, amount of sorbent, contact time, eluting agent, effect of interfering ions, etc. were optimized to achieve the best results. This 3D magnetic adsorbent was successfully employed for the elimination of Pb2+ ions in real water samples with good selectivity and efficiency. Furthermore, experimental exploration also indicated that the fabricated material could be advantageous for industrial applications due to its high stability, good regeneration ability (5 runs) and fast sorption-desorption cycle.

Abstract Image

一种结构工程化的花形磁性分级吸附剂,用于从水样中快速选择性吸收Pb2+离子†
考虑到Pb2+离子对生物体和环境的有害影响,我们将注意力集中在从水溶液中快速选择性地吸收Pb2+离子上。在这个方向上,我们目前的工作描述了一种有效的合成方案,用于开发经济可行的基于三维(3D)铁氧体的分级结构,以消除废水中的Pb2+离子。这些磁性结构表现出39.5312 m2 g−1的高BET表面积、高达400°C的良好热稳定性和花朵状形态。通过XRD、SEM、VSM、TEM、FT-IR、EDS、XPS和ED-XRF对合成的氧化铁基材料进行了系统的表征,以阐明其理化性质。设计SALDETA@CPTMS@Fe3O4吸附剂对Pb2+离子的吸附表现出优异的性能、更快的动力学、快速的分离、高选择性和良好的可回收性。Langmuir模型对吸附平衡结果进行了验证,表明最大吸附量为415.5 mg g−1,符合拟二阶动力学。吸附研究表明,所开发的吸附剂表面上可用的官能团及其分级结构在金属离子的吸收中发挥了积极作用,并容易(在8分钟内)从溶液中去除Pb2+离子。对pH、吸附剂用量、接触时间、洗脱剂、干扰离子的作用等不同变量进行了优化,以获得最佳结果。该3D磁性吸附剂以良好的选择性和效率成功地用于去除真实水样中的Pb2+离子。此外,实验探索还表明,所制备的材料由于其高稳定性、良好的再生能力(5次运行)和快速的吸附-解吸循环而有利于工业应用。
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来源期刊
Materials Chemistry Frontiers
Materials Chemistry Frontiers Materials Science-Materials Chemistry
CiteScore
12.00
自引率
2.90%
发文量
313
期刊介绍: Materials Chemistry Frontiers focuses on the synthesis and chemistry of exciting new materials, and the development of improved fabrication techniques. Characterisation and fundamental studies that are of broad appeal are also welcome. This is the ideal home for studies of a significant nature that further the development of organic, inorganic, composite and nano-materials.
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