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Comprehensive multiphase NMR spectroscopy: basic experimental approaches to differentiate phases in heterogeneous samples. | LitMetric

AI Article Synopsis

  • Heterogeneous samples like soils and plants contain different phases (liquid, gel, solid) that interact and affect their properties, making it challenging to study them individually without losing important data.
  • A new Comprehensive Multiphase-Nuclear Magnetic Resonance (CMP-NMR) probe has been developed to analyze these samples as a whole, allowing the study of interactions and structures across all phases without altering the sample.
  • The paper discusses experimental methods using a multiphase sample and demonstrates the probe's application in analyzing contaminated soil, showcasing its potential for in-situ studies of natural samples.

Article Abstract

Heterogeneous samples, such as soils, sediments, plants, tissues, foods and organisms, often contain liquid-, gel- and solid-like phases and it is the synergism between these phases that determine their environmental and biological properties. Studying each phase separately can perturb the sample, removing important structural information such as chemical interactions at the gel-solid interface, kinetics across boundaries and conformation in the natural state. In order to overcome these limitations a Comprehensive Multiphase-Nuclear Magnetic Resonance (CMP-NMR) probe has been developed, and is introduced here, that permits all bonds in all phases to be studied and differentiated in whole unaltered natural samples. The CMP-NMR probe is built with high power circuitry, Magic Angle Spinning (MAS), is fitted with a lock channel, pulse field gradients, and is fully susceptibility matched. Consequently, this novel NMR probe has to cover all HR-MAS aspects without compromising power handling to permit the full range of solution-, gel- and solid-state experiments available today. Using this technology, both structures and interactions can be studied independently in each phase as well as transfer/interactions between phases within a heterogeneous sample. This paper outlines some basic experimental approaches using a model heterogeneous multiphase sample containing liquid-, gel- and solid-like components in water, yielding separate (1)H and (13)C spectra for the different phases. In addition, (19)F performance is also addressed. To illustrate the capability of (19)F NMR soil samples, containing two different contaminants, are used, demonstrating a preliminary, but real-world application of this technology. This novel NMR approach possesses a great potential for the in situ study of natural samples in their native state.

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Source
http://dx.doi.org/10.1016/j.jmr.2012.02.009DOI Listing

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