Tracking Changes in Organic-Copper Speciation during Wastewater Treatment Using LC-ICPMS-ESIMS.

IF 6.7 Q1 ENGINEERING, ENVIRONMENTAL
ACS Environmental Au Pub Date : 2025-02-10 eCollection Date: 2025-03-19 DOI:10.1021/acsenvironau.4c00114
Laurinda Nyarko, Christian Dewey, Jeffrey A Nason, Rene M Boiteau
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引用次数: 0

Abstract

Wastewater is a significant source of copper to freshwater environments, which can severely harm aquatic life. The bioavailability and toxicity of copper in water are influenced by its complexation with dissolved organic matter (DOM). Speciation models, like the biotic ligand model (BLM) that guides Cu regulations, assume DOM is dominated by humic substances. Research suggests that anthropogenic compounds in wastewater discharge may be important copper binding ligands, although their identities remain largely unknown. To address this knowledge gap, we identified and quantified organic copper species isolated from 24 h composite wastewater samples by solid phase extraction (SPE) using liquid chromatography (LC) with inductively coupled plasma mass spectrometry (ICPMS) and electrospray ionization mass spectrometry (ESIMS). Analyses of samples across different stages of treatment revealed the net removal of Cu (73%) and DOC (66%). LC-ICPMS showed that certain complexes were selectively removed, while others evaded removal or were generated during treatment. Relatively hydrophobic complexes decreased in abundance from the initial to the secondary treatment stage. In contrast, more hydrophilic organic Cu complexes, likely formed during treatment, showed a significant increase from the secondary to the tertiary stage. The molecular mass and formula of seven discrete chromatographically resolved complexes were identified by LC-Orbitrap MS. Six were detected only in wastewater, and one was detected in all the wastewater and river samples. Identification of these compounds provides additional evidence for the formation of new copper-binding ligands during treatment and confirms the presence of nitrogen- and sulfur-containing compounds with copper-chelating properties in the wastewater. These findings demonstrate the utility of LCMS approaches for identifying and quantifying distinct organic-copper species in wastewater, as well as tracking their changes and removal during the treatment process.

利用LC-ICPMS-ESIMS跟踪废水处理过程中有机铜形态的变化。
废水是淡水环境中铜的重要来源,会严重危害水生生物。铜在水中的生物利用度和毒性受其与溶解有机物(DOM)的络合作用的影响。物种形成模型,如指导Cu调控的生物配体模型(BLM),假设DOM由腐殖质物质主导。研究表明,废水排放中的人为化合物可能是重要的铜结合配体,尽管它们的身份在很大程度上仍然未知。为了解决这一知识差距,我们利用液相色谱(LC)、电感耦合等离子体质谱(ICPMS)和电喷雾电离体质谱(ESIMS),通过固相萃取(SPE)从24 h复合废水样品中分离出有机铜,并对其进行了鉴定和定量。对不同处理阶段的样品进行分析显示,铜的净去除率为73%,DOC的净去除率为66%。LC-ICPMS显示,某些复合物被选择性地去除,而其他复合物则逃避去除或在处理过程中产生。从初始到二次处理阶段,相对疏水复合物的丰度下降。相比之下,在处理过程中可能形成的亲水有机Cu配合物从二级到三级显著增加。用LC-Orbitrap质谱法鉴定了7个分离的色谱分解配合物的分子质量和分子式,其中6个只在废水中检测到,1个在所有废水和河流样品中检测到。这些化合物的鉴定为在处理过程中形成新的铜结合配体提供了额外的证据,并证实了废水中存在具有铜螯合特性的含氮和含硫化合物。这些发现证明了LCMS方法在识别和量化废水中不同有机铜种类以及跟踪其在处理过程中的变化和去除方面的实用性。
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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来源期刊
ACS Environmental Au
ACS Environmental Au 环境科学-
CiteScore
7.10
自引率
0.00%
发文量
0
期刊介绍: ACS Environmental Au is an open access journal which publishes experimental research and theoretical results in all aspects of environmental science and technology both pure and applied. Short letters comprehensive articles reviews and perspectives are welcome in the following areas:Alternative EnergyAnthropogenic Impacts on Atmosphere Soil or WaterBiogeochemical CyclingBiomass or Wastes as ResourcesContaminants in Aquatic and Terrestrial EnvironmentsEnvironmental Data ScienceEcotoxicology and Public HealthEnergy and ClimateEnvironmental Modeling Processes and Measurement Methods and TechnologiesEnvironmental Nanotechnology and BiotechnologyGreen ChemistryGreen Manufacturing and EngineeringRisk assessment Regulatory Frameworks and Life-Cycle AssessmentsTreatment and Resource Recovery and Waste Management
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