Monitoring Contamination Through Environmental Soil Testing at Stanford University

SelectScience® spoke to Dr Guangchao Li, Technical Director of the Environmental Measurements Facility at Stanford University, about the technology enabling his research

6 Jul 2016
Sarah Thomas
Associate Editor

Editorial article

Dr Guangchao Li, Technical Director of the Environmental Measurements Facility at Stanford University discusses cutting-edge technology

Environmental soil testing and analysis is a reliable way to monitor environmental contaminations, from heavy metals to persistent organic pollutants. The Environmental Measurements Facility, managed by Dr. Guangchao Li, allows students and researchers from the Stanford University to perform accurate and precise analysis on a range of environmental soil, mineral and water samples. SelectScience spoke to Dr Li about technology at this cutting-edge facility.

At the facility, “users analyze soil and mineral samples at the same time as water samples”, explained Dr Li. When users bring samples to the facility, “we can analyze samples for them, or we can train them so they analyze the samples by themselves”. When it comes to sample preparation, the degree of difficulty varies. Generally, the two most common methods are solid phase extraction or a sample digestion. “Some soil samples can be a problem because they are very hard to digest”, Dr Li revealed. “We have to use a pretty strong acid such as nitric acid or hydrochloric acid, hydrofluoric acid – we try to minimize the use of these substances as they are very toxic or dangerous to human beings but sometimes we have to use it.”

Another challenge is that when using chemicals for digestion in high concentrations, “we have to dilute the sample a lot for our ICP analysis, which can lead to the soil concentration to be really low”. Coupling ICP with ion chromatography can overcome this problem – “combined together, these instruments help a lot with our environmental measurement”. “Our technicians spend time improving our methods so they are very robust”, Dr Li explained, “which can be very challenging”.

“Three instruments we use a lot in the labs are a Thermo ICP-MS XSeries II, a Thermo ICP-OES, which is the iCAP 6500, and a Thermo Dionex Ion Chromatograph”. Some elements, such as arsenic, can exist in many forms, such as arsenic III or arsenic V – “it is important to find out what the form is because they have different toxicities, so we have to couple different instruments together to get our measurements” revealed Dr Li.

For environmental research, Dr Li explained, “new instruments will help - sometimes there are certain analyses that need to be done, or a new result is needed, so new technology is needed for new research”. There are lots of instruments at the Stanford’s facility, which are not always “as accurate or as precise as ICP-MS or ICP-OES” – existing technology is “still not perfect”. “If we don’t have to digest or do the extraction of the sample to obtain accurate results– that will be the ideal situation”.

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Thermo Scientific™ Dionex™ Integrion™ HPIC™ System

Thermo Fisher Scientific

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Ion ChromatographyIon chromatography, also known as ion exchange chromatography, is a high-performance liquid chromatographic technique used for the separation and identification of ions or polar molecules in a sample, including proteins, nucleotides and amino acids. Equipment includes ion exchange columns, ion exclusion columns, ion chromatography systems, pumps, and detectors. Find the best ion chromatography equipment in our peer-reviewed product directory: compare products, check customer reviews and receive pricing direct from manufacturers.Atomic Absorption / Emission SpectroscopyAtomic absorption spectroscopy (AAS) and atomic emission spectroscopy (AES) — also called optical emission spectroscopy (OES) — are used to detect the elemental constituents in samples. Both techniques involve the atomization of a sample. Atomic absorption spectrometers may use a flame or furnace to create an atomic vapor of the sample before irradiation with spectral light. Optical emission spectrometers may use a flame, inductively coupled plasma (ICP), microwave plasma (MP) or spark arcs to atomize and excite the sample. At higher excitation energies, electrons can be emitted instead of photons, which can be useful for samples that can’t be atomized and for surface analysis. Explore electron spectroscopy equipment such as Auger spectrometers and photoelectron spectrometers for surface elemental analysis of samples. Find the best atomic absorption, photoelectron and optical emission spectrometers in our peer-reviewed product directory: compare products, check customer reviews and receive pricing direct from manufacturers.Mass SpectrometryMass spectrometry (MS) is a powerful analytical technique used to identify and quantify molecules based on the mass-to-charge ratio of gas-phase ions. It provides detailed information about the structure, composition, and properties of compounds and is widely used across fields such as environmental monitoring, materials science, drug discovery and development, food and beverage testing, and wider chemical research. Key MS techniques include tandem mass spectrometry (MS/MS), liquid chromatography–mass spectrometry (LS-MS) and inductively coupled plasma (ICP-MS). Choosing from these wide range of techniques and technologies can be a daunting task, so keep up to date with scientific applications, performance expectations, and customer reviews here all in one place. Visit our product directory to receive quotes direct from the manufacturer. Soil TestingSoil testing helps determine the nutrient content, pH level, and other factors affecting soil health. This information is critical for agriculture, environmental science, and land management. Explore soil testing solutions in our peer-reviewed product directory; compare products, check reviews, and get pricing directly from manufacturers.ICP-MSInductively Coupled Plasma Mass Spectrometry (ICP-MS) is a powerful analytical technique used to determine the concentrations of elements and their isotopes in a variety of samples, including water, soil, and biological tissues. It involves ionizing elements in the samples with extremely high-temperature Argon (Ar) plasma and then using a mass spectrometer to measure the number of ions based on their mass-to-charge ratio (m/z). Explore ICP-MS systems in our peer-reviewed product directory; compare products, check reviews, and get pricing directly from manufacturers.Environmental ContaminationContaminants in the environment are harmful chemicals that are present in the air, land and water. These include pesticides, pharmaceuticals, persistent organic pollutants (POPs) and many more.Environmental AnalysisEnvironmental analysis describes a variety of tests that determine the effect of chemicals, processes and particulates such as persistent organic pollutants (POPs) have on the environment.Persistent Organic Pollutants