NMR as a Discovery Tool: Exploration of Industrial Effluents Discharged Into the Environment.

IF 1.9 3区 化学 Q3 CHEMISTRY, MULTIDISCIPLINARY
Kiera Ronda, Jeremy Gauthier, Khanisha Singaravadivel, Peter M Costa, Katelyn Downey, William W Wolff, Daniel H Lysak, Jacob Pellizzari, Owen Vander Meulen, Katrina Steiner, Amy Jenne, Monica Bastawrous, Zainab Ng, Agnes Haber, Benjamin Goerling, Venita Busse, Falko Busse, Colin Elliot, Scott Mabury, Mohamed Ateia, Derek C G Muir, Robert J Letcher, Krish Krishnamurthy, Sonya Kleywegt, Karl J Jobst, Myrna J Simpson, Andre J Simpson
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引用次数: 0

Abstract

NMR provides unprecedented molecular information, urgently needed by environmental researchers and policy makers. However, NMR is underutilized in environmental sciences due to the lack of available technologies, limited environmental-specific training opportunities, and easy-to-use workflows. NMR has considerable potential as a discovery tool for novel pollutants, and by-products, exemplified by the recent discovery of the degradation by-product of a rubber additive, 6PPD-quinone, now considered one of the most toxic compounds presently known. This work represents a proof-of-concept case study highlighting the use of NMR to profile effluents from 38 industries across Ontario, Canada. Wastewater effluents from various industrial sectors were analyzed using several 1D and 2D 1H/13C NMR and 19F experiments and were screened both unconcentrated and after lyophilization. Common species could be identified using human metabolic NMR databases, but environmental-specific NMR databases desperately need further development. An example of manually identifying unusual NMR signatures is included; these resulted from phosphinic and phosphonic acids originating from the electroplating industry, for which the environmental impacts are not well understood. Basic 1H NMR quantification is performed using ERETIC, while an optimized approach combining relaxation agents and steady-state-free-precession 19F NMR, to reduce detection limits (at 500 MHz) to sub-ppb (< 1 μg/L) in under 15 min, is demonstrated. The future potential of benchtop NMR (80 MHz) is also considered. This paper represents a guide to others interested in applying NMR spectroscopy to environmental media and demonstrates the potential of NMR as a complementary tool to assist MS in environmental pollutant and by-product discovery.

核磁共振作为一种发现工具:工业废水排放到环境中的探索。
核磁共振提供了前所未有的分子信息,这是环境研究人员和决策者迫切需要的。然而,由于缺乏可用的技术、有限的环境特定培训机会和易于使用的工作流程,NMR在环境科学中的利用不足。核磁共振作为发现新污染物和副产品的工具具有相当大的潜力,例如最近发现的橡胶添加剂的降解副产品,6ppd -醌,现在被认为是目前已知的最有毒的化合物之一。这项工作代表了一个概念验证案例研究,重点介绍了使用核磁共振来分析加拿大安大略省38个行业的废水。利用1D和2D 1H/13C NMR和19F实验对不同工业部门的废水进行了分析,并对未浓缩和冻干后的废水进行了筛选。人类代谢核磁共振数据库可以识别常见的物种,但环境特异性核磁共振数据库迫切需要进一步发展。手动识别不寻常的核磁共振签名的一个例子包括;这些是由电镀工业产生的膦酸和膦酸造成的,对环境的影响尚不清楚。使用ERETIC进行基本的1H NMR定量,而优化的方法结合松弛剂和无稳态进动19F NMR,将检测限(在500 MHz)降低到亚ppb (
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来源期刊
CiteScore
4.70
自引率
10.00%
发文量
99
审稿时长
1 months
期刊介绍: MRC is devoted to the rapid publication of papers which are concerned with the development of magnetic resonance techniques, or in which the application of such techniques plays a pivotal part. Contributions from scientists working in all areas of NMR, ESR and NQR are invited, and papers describing applications in all branches of chemistry, structural biology and materials chemistry are published. The journal is of particular interest not only to scientists working in academic research, but also those working in commercial organisations who need to keep up-to-date with the latest practical applications of magnetic resonance techniques.
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