- Earth's field NMR
Nuclear magnetic resonance (NMR) in thegeomagnetic field is conventionally referred to as Earth's field NMR (EFNMR). Note that the same acronym is used forelectric field NMR .EFNMR is a special case of
low field NMR .When placed in a constant magnetic field and stimulated (perturbed) by a pulsed or alternating magnetic field, NMR active nuclei (such as 1H or 13C) resonate at frequencies characteristic of the
isotope . The resonant frequencies and signal strengths are proportional to the strength of the applied magnetic field. Thus in the 21tesla magnetic field that may be found in high resolution laboratory NMR spectrometers, protons resonate at 900 MHz. However in the Earth's magnetic field the same nuclei resonate at audio frequencies of around 2 kHz, generating very weak signals.The location of a nucleus within a complex molecule affects the chemical environment experienced by the nucleus. Thus different
hydrocarbon molecules containing NMR active nuclei in different positions within the molecule produce slightly different patterns of resonant frequencies. Analysis of the frequency spectrum allows the structure of the molecule to be determined.Applications
Applications of EFNMR include:
*
Proton precession magnetometer s (PPM) orproton magnetometer s, which produce magnetic resonance in a known sample in the magnetic field to be measured, measure the sample's resonant frequency, then calculate and display the field strength.* EFNMR spectrometers, which use the principle of
NMR spectroscopy to analyse molecular structures in a variety of applications, from investigating the structure of ice crystals in polar ice-fields, to rocks and hydrocarbons in the field.* Earth's field MRI scanners, which use the principle of
magnetic resonance imaging .The advantages of the Earth's field instruments over conventional (high field strength) instruments include the portability of the equipment giving the ability to analyse substances on site, and their lower cost. The much lower geomagnetic field strength, that would otherwise result in poor signal-to-noise ratios, is compensated by homogeneity of the Earth's field giving the ability to use much larger samples. Their relatively low cost and simplicity make them good educational tools.
Examples (illustrated) are the [http://www.teachspin.com/instruments/earths_field_NMR/index.shtml TeachSpin] and [http://www.magritek.com/terranova.html Terranova MRI] instruments.
Mode of operation
Free Induction Decay (FID) is the magnetic resonance due toLarmor precession that results from the stimulation of nuclei by means of either a "pulsed dc magnetic field" or a "pulsed resonant frequency (rf) magnetic field", somewhat analogous respectively to the effects of plucking or bowing a stringed instrument. Whereas a pulsed rf field is usual in conventional (high field) NMR spectrometers, the pulsed dc field method of stimulating FID is usual in EFNMR spectrometers and PPMs.Since the FID resonant frequency of NMR active nuclei is directly proportional to the magnetic field affecting those nuclei, we can use widely available NMR spectroscopy data to analyse suitable substances in the
Earth's magnetic field .For more context and an explanation of NMR principles, please refer to the main articles on
NMR andNMR spectroscopy .Proton EFNMR frequencies
The geomagnetic field strength and hence precession frequency varies with location and time.
: Larmor precession frequency =
magnetogyric ratio x magnetic field: Proton magnetogyric ratio = 42.576 Hz/μT (also written 42.576 MHz/T or 0.042576 Hz/nT): Earth's magnetic field: 30 μT near Equator to 60 μT near Poles, around 50 μT at mid-latitudes.Thus
proton (hydrogen nucleus) EFNMR frequencies areaudio frequencies of about 1.3 kHz near the Equator to 2.5 kHz near the Poles, around 2 kHz being typical of mid-latitudes.Examples of molecules containing hydrogen nuclei useful in proton EFNMR are
water ,hydrocarbons such asnatural gas andpetroleum , andcarbohydrates .History
Early EFNMR instruments were developed in the 1950s using
thermionic valve (vacuum tube ) circuits. SirPeter Mansfield 's first acquaintance with NMR was an undergraduate project to develop atransistorized EFNMR spectrometer in the late 1950's [http://nobelprize.org/nobel_prizes/medicine/laureates/2003/mansfield-autobio.html] . Following that introduction to NMR, he went on to invent anMRI scanner, for which he shared a Nobel prize.Links
*
Carbohydrate
* Earth's magnetic field variations
*Free induction decay (FID)
*Hydrocarbon
*Hydrogen
*Larmor precession
* Magnetogyric or Gyromagnetic ratio
*Magnetometer
*MRI
*NMR
*NMR spectroscopy
*Proton External links
* [http://www.teachspin.com/instruments/earths_field_NMR/index.shtml TeachSpin EFNMR instrument]
* http://www.magritek.com/earthsfieldscience.html
* [http://nobelprize.org/nobel_prizes/medicine/laureates/2003/mansfield-autobio.html Peter Mansfield autobiography]
Wikimedia Foundation. 2010.