In situ remediation of mercury-contaminated groundwater through an in situ created reactive zone enabled by carboxymethyl cellulose stabilized FeS nanoparticles.

IF 7.6 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Environmental Pollution Pub Date : 2024-11-15 Epub Date: 2024-09-06 DOI:10.1016/j.envpol.2024.124902
Mengxia Wang, Bing Han, Dongye Zhao, Sen Hou, Weizhao Yin, Yanyan Gong
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引用次数: 0

Abstract

Faced with worldwide mercury (Hg) contamination in groundwater, efficient in situ remediation technologies are urgently needed. Carboxymethyl cellulose (CMC) stabilized iron sulfide (CMC-FeS) nanoparticles have been found effective for immobilizing mercury in water and soil. Yet, the potential use of the nanoparticles for creating an in situ reactive zone (ISRZ) in porous geo-media has not been explored. This study assessed the transport and deliverability of CMC-FeS in sand media towards creating an ISRZ. The nanoparticles were deliverable through the saturated sand bed and the particle breakthrough/deposition profiles depended on the injection pore velocity, initial CMC-FeS concentration, and ionic strength. The transport data were well interpreted using an advection-dispersion transport model combined with the classical filtration theory. The resulting ISRZ effectively removed mercury from contaminated groundwater under typical subsurface conditions. While the operating conditions are yet to be optimized, the Hg breakthrough time can be affected by groundwater velocity, influent mercury concentration, dissolved organic matter, and co-existing metals/metalloids. The one-dimensional advection-dispersion equation well simulated the Hg breakthrough data. CMC-FeS-laden ISRZ effectively converted the more easily available Hg species to stable species. These findings reveal the potential of creating an ISRZ using CMC-FeS for in situ remediation of Hg contaminated soil and groundwater.

利用羧甲基纤维素稳定的 FeS 纳米颗粒,通过原位创建的反应区对受汞污染的地下水进行原位修复。
面对全球范围的地下水汞污染问题,迫切需要高效的原位修复技术。研究发现,羧甲基纤维素(CMC)稳定硫化铁(CMC-FeS)纳米粒子能有效固定水和土壤中的汞。然而,这种纳米颗粒在多孔地质介质中创建原位反应区(ISRZ)的潜在用途尚未得到探索。本研究评估了 CMC-FeS 在砂介质中的传输和可输送性,以建立一个 ISRZ。纳米颗粒可通过饱和砂床输送,颗粒的突破/沉积曲线取决于注入孔隙速度、CMC-FeS 初始浓度和离子强度。利用平流-分散传输模型结合经典过滤理论,可以很好地解释传输数据。在典型的地下条件下,所产生的 ISRZ 能有效去除受污染地下水中的汞。虽然运行条件还有待优化,但汞的突破时间会受到地下水流速、进水汞浓度、溶解有机物和共存金属/金属固体的影响。一维平流-分散方程很好地模拟了汞突破数据。含有 CMC-FeS 的 ISRZ 能有效地将更容易获得的汞物种转化为稳定的物种。这些研究结果揭示了利用 CMC-FeS 创建 ISRZ 对受汞污染的土壤和地下水进行原位修复的潜力。
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来源期刊
Environmental Pollution
Environmental Pollution 环境科学-环境科学
CiteScore
16.00
自引率
6.70%
发文量
2082
审稿时长
2.9 months
期刊介绍: Environmental Pollution is an international peer-reviewed journal that publishes high-quality research papers and review articles covering all aspects of environmental pollution and its impacts on ecosystems and human health. Subject areas include, but are not limited to: • Sources and occurrences of pollutants that are clearly defined and measured in environmental compartments, food and food-related items, and human bodies; • Interlinks between contaminant exposure and biological, ecological, and human health effects, including those of climate change; • Contaminants of emerging concerns (including but not limited to antibiotic resistant microorganisms or genes, microplastics/nanoplastics, electronic wastes, light, and noise) and/or their biological, ecological, or human health effects; • Laboratory and field studies on the remediation/mitigation of environmental pollution via new techniques and with clear links to biological, ecological, or human health effects; • Modeling of pollution processes, patterns, or trends that is of clear environmental and/or human health interest; • New techniques that measure and examine environmental occurrences, transport, behavior, and effects of pollutants within the environment or the laboratory, provided that they can be clearly used to address problems within regional or global environmental compartments.
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