Mechanistic Evidence for Hg Removal from Wastewater by Biologically Produced Sulfur.

Toxics Pub Date : 2024-04-10 DOI:10.3390/toxics12040278
Seok-Soon Jeong, B. Park, Jung-Hwan Yoon, Mary Beth Kirkham, Jae-E Yang, Hyuck-Soo Kim
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Abstract

A significant quantity of biologically produced sulfur (BPS) is generated as a by-product of chemical and biological desulfurization processes applied to landfill gas treatment. The beneficial upcycling of BPS has seen limited use in the environmental context. The effectiveness and underlying mechanism of BPS as an adsorbent for removing Hg2+ from both solution and wastewater were elucidated based on experiments encompassing surface characterization, adsorption isotherms, kinetics, and thermodynamics. The BPS exhibited remarkable efficacy in removing Hg2+ from solution, with the Langmuir model accurately describing the adsorption process and showing a maximum adsorption capacity of 244 mg g-1. Surface analysis through X-ray photoelectron spectroscopy and scanning electron microscopy revealed that Hg2+ complexed with sulfide on BPS surfaces, forming stable HgS. The adsorbed Hg was strongly retained in BPS, with less than 0.2% of the adsorbed Hg desorbed by strong acids. Adsorption kinetics followed the double-exponential first-order model, showing an initial rapid adsorption phase wherein 75% of the initial Hg2+ was removed within 5 min, followed by a slower adsorption rate. The thermodynamic parameters suggested that adsorption of Hg2+ by BPS was a spontaneous and endothermic process. Additionally, BPS effectively removed Hg2+ from wastewater, showing preference for Hg over other co-existing metals. These findings underscore the potential of BPS as an effective adsorbent for Hg2+ removal from wastewater.
生物硫去除废水中汞的机理证据。
在垃圾填埋场气体处理过程中,作为化学和生物脱硫工艺的副产品,会产生大量的生物产硫(BPS)。BPS 的有益再循环在环境方面的应用还很有限。根据包括表面特征、吸附等温线、动力学和热力学在内的实验,阐明了 BPS 作为吸附剂从溶液和废水中去除 Hg2+ 的有效性和基本机制。BPS 在从溶液中去除 Hg2+ 方面表现出显著的功效,其朗缪尔模型准确地描述了吸附过程,并显示出 244 mg g-1 的最大吸附容量。通过 X 射线光电子能谱和扫描电子显微镜进行的表面分析表明,Hg2+ 与 BPS 表面的硫化物络合,形成稳定的 HgS。吸附的汞被强烈地保留在 BPS 中,只有不到 0.2% 的吸附汞被强酸解吸。吸附动力学遵循双指数一阶模型,在最初的快速吸附阶段,75% 的初始 Hg2+ 在 5 分钟内被去除,随后吸附速度减慢。热力学参数表明,BPS 对 Hg2+ 的吸附是一个自发的内热过程。此外,BPS 还能有效去除废水中的 Hg2+,显示出对 Hg 的偏好,而不是其他共存金属。这些发现强调了 BPS 作为一种有效吸附剂去除废水中 Hg2+ 的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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