底灰高效合成a型沸石,可持续去除环境样品中的重金属

IF 2.5 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Lakshmi Prasanna Lingamdinne, Rakesh Kulkarni, Youngsik Ryu, Sae Hyun Kim, Min Sang Yoon, Shin Jae Won, Janardhan Reddy Koduru and Yoon-Young Chang
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引用次数: 0

摘要

本研究提出了一种以底灰(BA)为原料,采用碱性熔融法合成沸石a (baas - a)的新方法,为环境修复提供了一种可持续的解决方案。优化后的ba与naalo2的比例为1:3 .3,制备的baas - a结晶度好,比表面积高达211.40 m2 g−1,吸附性能增强。ba - a对Pb(II) (346.65 mg g−1)、Cd(II) (291.81 mg g−1)、Zn(II) (131.83 mg g−1)和Cu(II) (172.84 mg g−1)具有优异的吸附能力,吸附过程符合Langmuir等温线。热力学研究表明,吸附是自发和吸热的,由表面络合、离子交换和静电吸引等机制驱动。通过工业废水和污染土壤的试验验证了其实际应用。ba - a对重金属的去除效果显著,除Zn(II)外,废水中Pb(II)、Cu(II)和Cd(II)的去除率达到99.5%,土壤中Pb(II)、Cu(II)和Cd(II)的去除率降至0.5 mg L−1。这强调了即使在具有挑战性的环境条件下,其强劲的性能。这项研究强调了将工业废物转化为高性能吸附剂的双重效益,同时解决了水和土壤中重金属污染的关键问题。新的合成策略和已证明的效率使baas - a成为可扩展、经济高效和可持续的环境修复的有前途的候选物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient synthesis of zeolite-A from bottom ash for sustainable heavy metal removal from real environmental samples

Efficient synthesis of zeolite-A from bottom ash for sustainable heavy metal removal from real environmental samples

This study presents a novel approach to synthesizing zeolite-A (BAZ-A) from bottom ash (BA) using an alkaline fusion method, offering a sustainable solution for environmental remediation. The optimized synthesis, involving a BA-to-NaAlO2 ratio of 1 : 0.3, yielded BAZ-A with superior crystallinity, a high specific surface area of 211.40 m2 g−1, and enhanced adsorption properties. BAZ-A demonstrated exceptional adsorption capacities for Pb(II) (346.65 mg g−1), Cd(II) (291.81 mg g−1), Zn(II) (131.83 mg g−1), and Cu(II) (172.84 mg g−1), with adsorption processes aligning with the Langmuir isotherm. Thermodynamic studies revealed the adsorption to be spontaneous and endothermic, driven by mechanisms including surface complexation, ion exchange, and electrostatic attraction. Practical applications were validated through tests with industrial wastewater and contaminated soil. BAZ-A demonstrated significant efficacy in removing heavy metals, achieving 99.5% removal in wastewater for Pb(II), Cu(II), and Cd(II), and reducing them to 0.5 mg L−1 in soil, except for Zn(II). This underscores its robust performance even in challenging environmental conditions. This research highlights the dual benefit of transforming industrial waste into a high-performance adsorbent while addressing critical issues of heavy metal contamination in water and soil. The novel synthesis strategy and the demonstrated efficiency of BAZ-A position it a promising candidate for scalable, cost-effective, and sustainable environmental remediation.

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来源期刊
New Journal of Chemistry
New Journal of Chemistry 化学-化学综合
CiteScore
5.30
自引率
6.10%
发文量
1832
审稿时长
2 months
期刊介绍: A journal for new directions in chemistry
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