NQR
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Nuclear quadrupole resonance
spectroscopy Spectroscopy is the field of study that measures and interprets electromagnetic spectra. In narrower contexts, spectroscopy is the precise study of color as generalized from visible light to all bands of the electromagnetic spectrum. Spectro ...
or NQR is a
chemical analysis Analytical chemistry studies and uses instruments and methods to separate, identify, and quantify matter. In practice, separation, identification or quantification may constitute the entire analysis or be combined with another method. Separa ...
technique related to nuclear magnetic resonance (
NMR Nuclear magnetic resonance (NMR) is a physical phenomenon in which atomic nucleus, nuclei in a strong constant magnetic field are disturbed by a weak oscillating magnetic field (in the near and far field, near field) and respond by producing ...
). Unlike NMR, NQR transitions of nuclei can be detected in the absence of a
magnetic field A magnetic field (sometimes called B-field) is a physical field that describes the magnetic influence on moving electric charges, electric currents, and magnetic materials. A moving charge in a magnetic field experiences a force perpendicular ...
, and for this reason NQR spectroscopy is referred to as " zero Field NMR". The NQR resonance is mediated by the interaction of the
electric field An electric field (sometimes called E-field) is a field (physics), physical field that surrounds electrically charged particles such as electrons. In classical electromagnetism, the electric field of a single charge (or group of charges) descri ...
gradient (EFG) with the
quadrupole moment A quadrupole or quadrapole is one of a sequence of configurations of things like electric charge or current, or gravitational mass that can exist in ideal form, but it is usually just part of a multipole expansion of a more complex structure ref ...
of the nuclear
charge distribution In electromagnetism, charge density is the amount of electric charge per unit length, surface area, or volume. Volume charge density (symbolized by the Greek letter ρ) is the quantity of charge per unit volume, measured in the SI system in co ...
. Unlike NMR, NQR is applicable only to solids and not liquids, because in liquids the electric field gradient at the nucleus averages to zero (the EFG tensor has
trace Trace may refer to: Arts and entertainment Music * ''Trace'' (Son Volt album), 1995 * ''Trace'' (Died Pretty album), 1993 * Trace (band), a Dutch progressive rock band * ''The Trace'' (album), by Nell Other uses in arts and entertainment * ...
zero). Because the EFG at the location of a nucleus in a given substance is determined primarily by the
valence electrons In chemistry and physics, valence electrons are electrons in the outermost shell of an atom, and that can participate in the formation of a chemical bond if the outermost shell is not closed. In a single covalent bond, a shared pair forms with b ...
involved in the particular bond with other nearby nuclei, the NQR
frequency Frequency is the number of occurrences of a repeating event per unit of time. Frequency is an important parameter used in science and engineering to specify the rate of oscillatory and vibratory phenomena, such as mechanical vibrations, audio ...
at which transitions occur is unique for a given substance. A particular NQR frequency in a compound or crystal is proportional to the product of the nuclear quadrupole moment, a property of the nucleus, and the EFG in the neighborhood of the nucleus. It is this product which is termed the nuclear quadrupole coupling constant for a given isotope in a material and can be found in tables of known NQR transitions. In NMR, an analogous but not identical phenomenon is the coupling constant, which is also the result of an internuclear interaction between nuclei in the analyte.


Principle

Any nucleus with more than one unpaired nuclear particle (protons or neutrons) will have a charge distribution which results in an electric quadrupole moment. Allowed nuclear energy levels are shifted unequally due to the interaction of the nuclear charge with an electric field gradient supplied by the non-uniform distribution of electron density (e.g. from bonding electrons) and/or surrounding ions. As in the case of NMR, irradiation of the nucleus with a burst of RF electromagnetic radiation may result in absorption of some energy by the nucleus which can be viewed as a
perturbation Perturbation or perturb may refer to: * Perturbation theory, mathematical methods that give approximate solutions to problems that cannot be solved exactly * Perturbation (geology), changes in the nature of alluvial deposits over time * Perturbati ...
of the quadrupole energy level. Unlike the NMR case, NQR absorption takes place in the absence of an external magnetic field. Application of an external static field to a quadrupolar nucleus splits the quadrupole levels by the energy predicted from the Zeeman interaction. The technique is very sensitive to the nature and symmetry of the bonding around the nucleus. It can characterize
phase transition In physics, chemistry, and other related fields like biology, a phase transition (or phase change) is the physical process of transition between one state of a medium and another. Commonly the term is used to refer to changes among the basic Sta ...
s in solids when performed at varying temperature. Due to symmetry, the shifts become averaged to zero in the liquid phase, so NQR spectra can only be measured for solids.


Analogy with NMR

In the case of NMR, nuclei with
spin Spin or spinning most often refers to: * Spin (physics) or particle spin, a fundamental property of elementary particles * Spin quantum number, a number which defines the value of a particle's spin * Spinning (textiles), the creation of yarn or thr ...
≥ 1/2 have a magnetic dipole moment so that their energies are split by a magnetic field, allowing resonance absorption of energy related to the
Larmor frequency Sir Joseph Larmor (; 11 July 1857 – 19 May 1942) was an Irish mathematician and physicist who made breakthroughs in the understanding of electricity, dynamics, thermodynamics, and the electron theory of matter. His most influential work was ...
: where \gamma is the
gyromagnetic ratio In physics, the gyromagnetic ratio (also sometimes known as the magnetogyric ratio in other disciplines) of a particle or system is the ratio of its magnetic moment to its angular momentum, and it is often denoted by the symbol , gamma. Its SI u ...
and B is the (normally applied) magnetic field external to the nucleus. In the case of NQR, nuclei with spin ≥ 1, such as 14 N, 17O, 35 Cl and 63 Cu, also have an electric quadrupole moment. The nuclear quadrupole moment is associated with non-spherical nuclear charge distributions. As such it is a measure of the degree to which the nuclear charge distribution deviates from that of a sphere; that is, the
prolate A spheroid, also known as an ellipsoid of revolution or rotational ellipsoid, is a quadric surface obtained by rotating an ellipse about one of its principal axes; in other words, an ellipsoid with two equal semi-diameters. A spheroid has circu ...
or
oblate In Christianity (specifically the Roman Catholic, Orthodox, Lutheran, Anglican and Methodist traditions), an oblate is a person associated with a Benedictine monastery or convent who is specifically dedicated to God and service. Oblates are i ...
shape of the nucleus. NQR is a direct observation of the interaction of the quadrupole moment with the local electric field gradient (EFG) created by the electronic structure of its environment. The NQR transition frequencies are proportional to the product of the electric quadrupole moment of the nucleus and a measure of the strength of the local EFG: where q is related to the largest principal component of the EFG tensor at the nucleus. C_q is referred to as the quadrupole coupling constant. In principle, the NQR experimenter could apply a specified EFG in order to influence \omega_Q just as the NMR experimenter is free to choose the Larmor frequency by adjusting the magnetic field. However, in solids, the strength of the EFG is many kV/m^2, making the application of EFG's for NQR in the manner that external magnetic fields are chosen for NMR impractical. Consequently, the NQR spectrum of a substance is specific to the substance - and NQR spectrum is a so called "chemical fingerprint." Because NQR frequencies are not chosen by the experimenter, they can be difficult to find making NQR a technically difficult technique to carry out. Since NQR is done in an environment without a static (or DC) magnetic field, it is sometimes called " zero field NMR". Many NQR transition frequencies depend strongly upon temperature.


Derivation of resonance frequency

Source: Consider a nucleus with a non-zero quadrupole moment \textbf and charge density \rho(\textbf), which is surrounded by a potential V(\textbf). This potential may be produced by the electrons as stated above, whose probability distribution might be non-isotropic in general. The potential energy in this system equals to the integral over the charge distribution \rho(\textbf) and the potential V(\textbf) within a domain \mathcal: U = - \int_d^3r \rho(\textbf)V(\textbf)One can write the potential as a Taylor-expansion at the center of the considered nucleus. This method corresponds to the
multipole expansion A multipole expansion is a mathematical series representing a function that depends on angles—usually the two angles used in the spherical coordinate system (the polar and azimuthal angles) for three-dimensional Euclidean space, \R^3. Multipo ...
in cartesian coordinates (note that the equations below use the Einstein sum-convention): V(\textbf) = V(0) + \left \left( \frac\right)\Bigg\vert_0 \cdot x_i \right+ \frac \left \left( \frac\right) \Bigg\vert_0 \cdot x_i x_j \right+ ... The first term involving V(0) will not be relevant and can therefore be omitted. Since nuclei do not have an
electric dipole moment The electric dipole moment is a measure of the separation of positive and negative electrical charges within a system: that is, a measure of the system's overall Chemical polarity, polarity. The International System of Units, SI unit for electric ...
\textbf, which would interact with the electric field \textbf = - \mathrm V(\textbf), the first derivatives can also be neglected. One is therefore left with all nine combinations of second derivatives. However if one deals with a homogeneous oblate or prolate nucleus the matrix Q_ will be diagonal and elements with i \neq j vanish. This leads to a simplification because the equation for the potential energy now contains only the second derivatives in respect to the same variable: U = - \frac \int_d^3r \rho(\textbf) \left \left( \frac\right) \Bigg\vert_0 \cdot x_i^2 \right= - \frac \int_d^3r \rho(\textbf) \left \left( \frac\right) \Bigg\vert_0 \cdot x_i^2 \right= - \frac \left( \frac\right) \Bigg\vert_0 \cdot \int_d^3r \left rho(\textbf) \cdot x_i^2 \right/math>The remaining terms in the integral are related to the charge distribution and hence the quadrupole moment. The formula can be simplified even further by introducing the
electric field gradient In atomic, molecular, and solid-state physics, the electric field gradient (EFG) measures the rate of change of the electric field at an atomic nucleus generated by the electronic charge distribution and the other nuclei. The EFG couples with the ...
V_ = \frac = eq , choosing the z-axis as the one with the maximal principal component Q_ and using the
Laplace equation In mathematics and physics, Laplace's equation is a second-order partial differential equation named after Pierre-Simon Laplace, who first studied its properties in 1786. This is often written as \nabla^2\! f = 0 or \Delta f = 0, where \Delt ...
to obtain the proportionality written above. For an I = 3/2 nucleus one obtains with the frequency-energy relation E = h\nu: \nu = \frac\left(\frac\right)


Applications

NQR probes the interaction between the nuclear
quadrupole moment A quadrupole or quadrapole is one of a sequence of configurations of things like electric charge or current, or gravitational mass that can exist in ideal form, but it is usually just part of a multipole expansion of a more complex structure ref ...
and the electric field gradient at the nucleus. Since the EFG tensor arises from the electron cloud density around a particular region, NQR is highly sensitive to changes in electron charge distribution surrounding the NQR-active nucleus. Such sensitivity makes NQR spectroscopy a useful method for the study of bonding, structural features, phase transitions, and molecular dynamics in solid-state compounds. For example, NQR spectroscopy has proven to be a useful tool in the realm of pharmaceuticals. More specifically, the application of 14N-NQR has allowed for the differentiation of enantiomeric compounds from racemic mixtures; namely in, D-serine and L-serine. These two compounds, despite their similar composition, possess distinct properties. On one hand, D-serine is a potential biomarker for Alzheimer’s disease as well as a treatment for schizophrenia. L-serine, on the other hand, is a drug undergoing FDA-approved human clinical trials due to its potential in treating amyotrophic lateral sclerosis. Through NQR the mixture of L/D-serine can be differentiated from pure L/D-serine. Note that L-serine and D-serine cannot be differentiated due to being related by a reflection. Similarly, NQR possesses the ability to differentiate between crystalline polymorphs. Sulfonamide-containing drugs, for example, have shown to be susceptible to polymorphism. Differences in NQR frequencies, along with the quadrupole coupling constants and asymmetry parameters, allow differentiation between polymorphs as can be done with enantiomeric compounds. Distinguishing between polymorphs in such a manner makes NQR a powerful tool for authenticating drugs against counterfeits. There are several research groups around the world currently working on ways to use NQR to detect explosives. Units designed to detect landmines and explosives concealed in luggage have been tested. A detection system consists of a radio frequency (RF) power source, a coil to produce the magnetic excitation field and a detector circuit which monitors for a RF NQR response coming from the explosive component of the object. A fake device known as the ADE 651 claimed to exploit NQR to detect explosives but in fact could do no such thing. Nonetheless, the device was successfully sold for millions to dozens of countries, including the government of Iraq. Another practical use for NQR is measuring the water/gas/oil coming out of an
oil well An oil well is a drillhole boring in Earth that is designed to bring petroleum oil hydrocarbons to the surface. Usually some natural gas is released as associated petroleum gas along with the oil. A well that is designed to produce only gas m ...
in realtime. This particular technique allows local or remote monitoring of the extraction process, calculation of the well's remaining capacity and the water/detergents ratio the input pump must send to efficiently extract oil. Due to the strong temperature dependence of the NQR frequency, it can be used as a precise temperature sensor with resolution on the order of 10−4 °C. The main limitation for this technique arises from isotopic abundance. NQR requires the presence of a non-zero quadrupole moment, which is only observed in nuclei with a
nuclear spin Nuclear may refer to: Physics Relating to the nucleus of the atom: * Nuclear engineering * Nuclear physics * Nuclear power * Nuclear reactor * Nuclear weapon * Nuclear medicine *Radiation therapy *Nuclear warfare Mathematics * Nuclear space * ...
greater than or equal to one (''I ≥ 1'') and whose local charge distribution deviates from spherical symmetry. NQR requires fairly large sample sizes due to the signals being of very low intensity. This poses experimental obstacles due to a large majority of NQR-active nuclei having low isotopic abundances. Nevertheless, NQR spectroscopy has still proven useful in various contexts – as discussed above.


References

{{DEFAULTSORT:Nuclear Quadrupole Resonance Nuclear magnetic resonance