4.4 Article

Exploring Nanogeochemical Environments: New Insights from Single Particle ICP-TOFMS and AF4-ICPMS

Journal

ACS EARTH AND SPACE CHEMISTRY
Volume 6, Issue 4, Pages 943-952

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsearthspacechem.1c00350

Keywords

Single particle ICP-MS; Field flow fractionation; nanoparticles; nanogeoscience; ICP-TOFMS

Funding

  1. National Science Foundation [NSF-CBET 1512695]
  2. Alberta Innovates (AI)
  3. Canada's Oil Sands Innovation Alliance (COSIA)
  4. Natural Sciences and Engineering Research Council of Canada (NSERC)
  5. European Union Horizon 2020 project ACEnano [720952]

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Nanogeochemistry is a burgeoning field that investigates the role of nanoparticles in Earth systems. By utilizing engineered nanotechnology and advanced analytical techniques such as ICP-TOF-MS and AF4-ICP-MS, researchers can study the mechanisms and processes of nanogeochemistry. This study specifically focuses on the isotopic and elemental ratios of individual nanoparticles and the importance of suspended Fe and Mn in the speciation of Pb. The combination of spICP-TOF-MS and AF4-ICP-MS offers a powerful tool for exploring the colloid facilitated transport of trace elements.
: Nanogeochemistry is an emerging focus area recognizing the role of nanoparticles in Earth systems. Engineered nanotechnology has cultivated advanced analytical techniques that are also applicable to nanogeochemistry. Single particle inductively coupled plasma ICP-time-offlight-mass spectrometry (ICP-TOF-MS) promises a significant step forward, as time-of-flight mass analyzers enable simultaneous quantification of the entire atomic mass spectrum (similar to 7-250 m/z+ ). To demonstrate the utility of this approach, samples were collected and analyzed from a large, boreal river, and its surrounding tributaries. These samples provided us with a diversity of particle compositions and morphologies, while their interconnected nature allowed for an examination of the various nanogeochemical processes present in this system. To further expand on this effort, we combined this high-throughput technique with AF4-ICPMS, focusing on major carriers of trace elements. Using spICP-TOF-MS, Al, Si, and Fe were grouped into classes having all combinations of one or more of these elements. Particle-by-particle ICP-TOF-MS analysis found chemically heterogeneous populations, indicating the predominance of diverse mineralogy or heteroaggregates. The importance of suspended Fe and Mn for the speciation of Pb was observed by single particle ICP-TOF-MS and complemented by AF4-ICPMS analysis of dissolved organic matter and nanoparticulate Fe/Mn. Our study exploits the combination of spICP-TOF-MS and AF4-ICP-MS for studying isotopic and elemental ratios (mineralogy) of individual nanoparticles, which opens the door to further explore the mechanisms of colloid facilitated transport of trace elements

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