煅烧稻壳灰合成钙改性NaY沸石改善铜离子吸附性能

IF 4.2 4区 材料科学 Q2 MATERIALS SCIENCE, CERAMICS Journal of Sol-Gel Science and Technology Pub Date : 2024-12-02 DOI:10.1007/s10971-024-06637-w
Nguyen H. Ngoan, Luong H. V. Thanh, Le T. Phu, Dang H. Giao, Ngo T. N. Mai
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引用次数: 0

摘要

本研究以稻壳灰为原料,采用水热法制备了NaY沸石,并对其进行了钙改性,显著提高了其对铜离子的吸附能力。先进的分析技术证实了ca改性NaY沸石的成功制备,其CaO/Al2O3比为1.0,结晶时间仅为24 h,结晶度高达95%。该分子筛具有微孔结构,孔径为1.139 nm,比表面积为321.1 m2/g。确定了铜离子吸附的最佳条件为pH为4.0,初始浓度为50 mg/L,吸附剂质量为0.1 g,接触时间为60 min,最大吸附量为75.18 mg/g。动力学和等温线分析表明,吸附过程具有表面能均匀的可逆特征,使吸附剂能够通过物理相互作用促进多层吸附。这些令人信服的发现强调了从稻壳灰中提取的Ca-NaY沸石作为有效去除废水中金属离子的可持续解决方案的令人兴奋的潜力,为环境修复和资源回收的创新应用铺平了道路。图形抽象
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Improving copper ions adsorption using Ca-modified NaY zeolite synthesized from calcined rice husk ash

In this study, NaY zeolite was fabricated from calcined rice husk ash using a hydrothermal method, followed by modification with calcium, which significantly enhanced its capacity to adsorb copper ions. Advanced analytical techniques confirmed the successful creation of Ca-modified NaY zeolite, which boasted a CaO/Al2O3 ratio of 1.0, a crystallization time of just 24 h, and an impressive crystallinity of 95%. This zeolite featured a microporous structure with a pore diameter of 1.139 nm and a specific surface area of 321.1 m2/g. The optimal conditions for copper ion adsorption were pinpointed to a pH of 4.0, an initial concentration of 50 mg/L, and a modest adsorbent mass of 0.1 g over a contact time of 60 min, achieving a remarkable maximum capacity of 75.18 mg/g. The kinetic and isotherm analyses revealed a reversible adsorption process characterized by uniform surface energy, enabling the adsorbent to facilitate multilayer adsorption through physical interactions. These compelling findings underscore the exciting potential of Ca-NaY zeolite derived from rice husk ash as a sustainable solution for effectively removing metal ions from wastewater, paving the way for innovative applications in environmental remediation and resource recovery.

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来源期刊
Journal of Sol-Gel Science and Technology
Journal of Sol-Gel Science and Technology 工程技术-材料科学:硅酸盐
CiteScore
4.70
自引率
4.00%
发文量
280
审稿时长
2.1 months
期刊介绍: The primary objective of the Journal of Sol-Gel Science and Technology (JSST), the official journal of the International Sol-Gel Society, is to provide an international forum for the dissemination of scientific, technological, and general knowledge about materials processed by chemical nanotechnologies known as the "sol-gel" process. The materials of interest include gels, gel-derived glasses, ceramics in form of nano- and micro-powders, bulk, fibres, thin films and coatings as well as more recent materials such as hybrid organic-inorganic materials and composites. Such materials exhibit a wide range of optical, electronic, magnetic, chemical, environmental, and biomedical properties and functionalities. Methods for producing sol-gel-derived materials and the industrial uses of these materials are also of great interest.
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