EP2033007A1 - Measurement of homonuclear j-couplings in ultralow magnetic fields by high-resolution nmr spectroscopy - Google Patents
Measurement of homonuclear j-couplings in ultralow magnetic fields by high-resolution nmr spectroscopyInfo
- Publication number
- EP2033007A1 EP2033007A1 EP07729061A EP07729061A EP2033007A1 EP 2033007 A1 EP2033007 A1 EP 2033007A1 EP 07729061 A EP07729061 A EP 07729061A EP 07729061 A EP07729061 A EP 07729061A EP 2033007 A1 EP2033007 A1 EP 2033007A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- sample
- couplings
- magnetic field
- nuclear
- coupling
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/44—Arrangements or instruments for measuring magnetic variables involving magnetic resonance using nuclear magnetic resonance [NMR]
- G01R33/46—NMR spectroscopy
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N24/00—Investigating or analyzing materials by the use of nuclear magnetic resonance, electron paramagnetic resonance or other spin effects
- G01N24/08—Investigating or analyzing materials by the use of nuclear magnetic resonance, electron paramagnetic resonance or other spin effects by using nuclear magnetic resonance
- G01N24/087—Structure determination of a chemical compound, e.g. of a biomolecule such as a protein
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/44—Arrangements or instruments for measuring magnetic variables involving magnetic resonance using nuclear magnetic resonance [NMR]
- G01R33/445—MR involving a non-standard magnetic field B0, e.g. of low magnitude as in the earth's magnetic field or in nanoTesla spectroscopy, comprising a polarizing magnetic field for pre-polarisation, B0 with a temporal variation of its magnitude or direction such as field cycling of B0 or rotation of the direction of B0, or spatially inhomogeneous B0 like in fringe-field MR or in stray-field imaging
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/44—Arrangements or instruments for measuring magnetic variables involving magnetic resonance using nuclear magnetic resonance [NMR]
- G01R33/46—NMR spectroscopy
- G01R33/465—NMR spectroscopy applied to biological material, e.g. in vitro testing
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/20—Arrangements or instruments for measuring magnetic variables involving magnetic resonance
- G01R33/44—Arrangements or instruments for measuring magnetic variables involving magnetic resonance using nuclear magnetic resonance [NMR]
- G01R33/48—NMR imaging systems
- G01R33/483—NMR imaging systems with selection of signals or spectra from particular regions of the volume, e.g. in vivo spectroscopy
- G01R33/485—NMR imaging systems with selection of signals or spectra from particular regions of the volume, e.g. in vivo spectroscopy based on chemical shift information [CSI] or spectroscopic imaging, e.g. to acquire the spatial distributions of metabolites
Definitions
- the invention relates to a method and a device for examining molecules by means of NMR spectroscopy.
- NMR Nuclear magnetic spectroscopy
- MRT magnetic resonance tomography
- the final three interactions play an important role in the structural elucidation of molecules.
- the polarization transfer between different nuclei is exploited through the mechanism of dipolar cross-relaxation (nuclear Overhauser-effect spectroscopy, NOESY) for structural elucidation of large molecules.
- NOESY nuclear Overhauser-effect spectroscopy
- the 2D COSY method employs chemical shift as well as J-coupling in order to measure the network of J-coupled nuclear spins and thus, the molecular structure, as is apparent from the printed publication "Ernst, R. R., Bodenhausen, G. & Wokaun, A. Principles of Nuclear Magnetic Resonance in One and Two Dimensions (Clarendon Press, Oxford, UK, 1987)".
- This additional magnetic field is proportional to the magnetic field B 0 and shifts the Larmor frequency.
- ⁇ o Y Bo
- the chemical shifts are in the range of 0 - 10 ppm, i.e., the Larmor frequency of the proton species observed is only shifted by the factor 10 "6 to 10 "5 , multiplied by the Larmor frequency.
- low-field NMR nuclear spin resonance measurements in small magnetic fields
- J-coupling also known as spin-spin coupling
- J-coupling between two nuclear spins [see: Proctor, W. G. &.Yu, F. C. On the Nuclear Magnetic Moments of Several Stable Isotopes. Phys. Rev. 81 , 20-30 (1951 )] is caused by the indirect communication between a nuclear spin l a and a second nuclear spin I 6 conveyed through the electrons within the chemical bond between l a and I B .
- J-coupling energy typically 0.1 - 200 Hz for protons
- the J-coupling is independent from the external magnetic field B 0 , which is very important indeed.
- J-coupling between I 3 and I B may also occur across several chemical bonds. A rule of thumb states that, the larger the bond distance is (the more bonds are located between I A and I B ), the weaker the J-coupling constant or the J-coupling energy is.
- the independence of the J-coupling from the field B 0 means that the J-coupling constant can be measured with a high degree of accuracy, also in the case of arbitrarily small magnetic fields.
- Quantum-mechanical calculations showed that a split in the NMR spectrum due to J- coupling is observable only if the difference of the Larmor frequencies of the nuclear spins I A and I B is larger than the J-coupling to be observed.
- a difference of the Larmor frequencies of i A and I B exists either because of their different chemical shifts or because of the different gyromagnetic ratios ⁇ a und y B .
- the J-coupling is called heteronuclear. If I A and I B are of the same type (e.g., two protons), then the coupling is referred to as homonuclear. Therefore, the heteronuclear J-coupling is measurable down to very small magnetic fields (to ⁇ 10 '7 T), because the difference in Larmor frequencies of I A and I B is greater, even at 1fT 7 T, than the J-coupling.
- the homonuclear J-coupling is another case.
- the typical 1 H-line width of ethanol is approximately 100 mHz, whereas the difference in the chemical shift of the protons of the CH 2 or the CH 3 -group is a few mHz. Therefore, all protons of ethanol are magnetically equivalent in earth's magnetic field.
- the homonuclear J-coupling cannot be measured. This fact is shown for the ethanol molecule in Fig. 1. In the case of a high magnetic field - hereinafter referred to high-field - of about 1.5 T, the chemical shifts are much bigger than the 1 H-line widths.
- the 1 H- spectrum shows, on the one hand, the three chemical shifts of the OH, CH 2 and CH 3 - groups, and on the other hand the homonuclear J-couplings of the CH 2 -group (coupling with the protons of the CH 3 -group: -> quartet) and the CH 3 -group (coupling with the protons of the CH 2 -group: -> triplet).
- the proton of the OH-group exhibits no homonuclear J-coupling with the other two groups because the proton can move freely because of the hydrogen bridge bond.
- the combination of the measured chemical shift with the homonuclear J-couplings permits an association with the structure of the ethanol molecule. This fact therefore forms the basis for the high-resolution high- field NMR.
- Mc Dermott et al. [see: McDermott, R, et al. Liquid-State NMR and Scalar Couplings in Microtesla Magnetic Fields. Science 295, 2247-2249 (2002)] demonstrated the measurement of the heteronuclear 1 H- 31 P J-coupling constant with SQUID's in the nT range.
- the 1 H-line width which in these experiments is dominated by the inhomogeneity of the Bo-field, is approximately 1 Hz. Only recently, the relevance of the ultra-high resolution 1 H, 19 F und 7 Li NMR spectroscopy in earth's magnetic field was demonstrated by S. Appelt, H. K ⁇ hn, W. Hasing und B. Bl ⁇ mich in Nature Physics 2, 105-109 (2006), with 1 H-line widths shown down to 0.03 Hz. The heteronuclear 1 H- 19 F and 1 H- 29 Si J-coupling constants of various molecules could be determined with an accuracy of a few mHz.
- Fig. 2 shows a comparison between the heteronuclear 1 H- 29 Si J-coupling of tetramethyl silane (TMS) measured in a very homogeneous ( ⁇ 3 ppb) 9.4 T high-field magnet and the same J- coupling constant, but measured in earth's magnetic field.
- TMS tetramethyl silane
- Fig. 3 shows another example for earth field NMR with the molecule nonafluorohexene with eight heteronuclear 1 H- 19 F J-couplings, which can all be identified in the spectrum. This is an example that demonstrates that the J-coupling network can be measured over a distance of many bonds in a single measurement, and that the molecular structure can thus be captured.
- the 19 F-spectrum of nonafluorohexene (NFH) shown in Fig. 3 is characterized by eight heteronuclear 1 H- 19 F J-couplings.
- the 19 F-spectrum consists of a superposition of 4 triplets and 4 doublets.
- the upper curve is a simulation of this superposition and shows that the molecule structure of NFH becomes visible with a single measurement.
- the number at the top left next to the J-coupling constant indicates the number of chemical bonds between the observed 1 H and 19 F nuclei, (source: Nature Physics 2, 105-109 (2006)).
- the object is solved by a method for examining a sample by means of nuclear magnetic spectroscopy by measuring homonuclear J-couplings in a small magnetic field and using the measured homonuclear couplings being used for characterizing the sample.
- the 1 H spectrum in the low-field consists mainly of a single 1 H-line without structure (as is already suggested in Fig. 1 in earth's magnetic field) as well as very small satellite lines (approximately 200 times smaller than the main line) arising from the heteronuclear 1 H- 13 C J-couplings.
- the structural determination is now possible at least for those 1 H nuclei coupled in a heteronuclear way with 13 C nuclei (1% occurrence) or other rare nuclei (e.g. 15 N). This then leads to a measurable, high- resolution homonuclear J-coupled H-spectrum, which at the same time contains information about the heteronuclear couplings.
- a pre- magnetization of the sample to be examined for example in a strong magnetic field of preferably at least 1 Tesla, is carried out in one embodiment.
- particularly strong magnets preferably permanent magnets of one to two Tesla, are used for this purpose.
- the experts had, as a rule, used comparatively weak (electro-)magnets for pre- magnetization, with which magnetic fields of an order of magnitude of 0.1 to 0.3 Tesla were generated.
- weak fields used for pre-magnetization result in measurement results that, as a rule, are unsatisfactory for carrying out the method claimed.
- Much stronger magnets are used for carrying out a pre-magnetization, thus departing from the path commonly used in the field.
- the sample volume is selected to be small in one embodiment in order to come close to this aim.
- a sample volume of less than 2 cm 3 is small within the sense of the invention.
- the skilled person chose a sample with a volume of 500 cm 3 and more in measurements in weak magnetic fields. There is also a departure from the measures common in the field in this respect.
- the samples are enriched suitably, for example with 13 C nuclei in order to ensure in an improved manner that the method can be carried out.
- the measured results are subsequently used for a chemical characterization.
- the ability is successfully attained of measuring with a considerably greater accuracy and thus characterizing a sample, i.e. primarily an organic sample, with considerably greater accuracy, and in earth's magnetic field.
- the method according to the invention can also be carried out without such an enrichment. Characterization in earth's magnetic field simplifies characterization because earth's magnetic field is at one's disposal as a matter of course, without having to resort to a technical effort.
- a sample for instance, consists of molecules having the skeleton X M -A-B-X K .
- k 1 , 2, ..., K spins of the type X, hereinafter referred to as X ⁇ , are bonded to the molecular group B.
- X represents, e.g., the proton or another nucleus to be measured.
- Such a molecule for example, comprises 13 C atoms with a natural occurrence of 1%, for example in the part A of the molecule.
- the spectrum comprises two symmetrical multiplet structures whose intensities are approximately 1000 times lower, compared with the intensity of the central line.
- the two multiplet structures typically consist of two quartets and two triplets whose splitting patterns are caused by the homonuclear J-coupling between X 3 and X 2 .
- the four lines of the quartet structure with intensity ratios of typically 1 :3:3:1 and the distance J H - H in the frequency space belong to the NMR signal of the two protons of the X 2 -group, which couple in a homonuclear fashion to the 8 possible configurations of the three protons of the X 3 -group.
- the three lines of the triplet structure with the typical intensity ratios 1 :2:1 and the same distance J H - H belong to the NMR signal of the three protons of the X 3 -group that couple to the 4 possible configurations of the two protons of the X 2 -group in a homonuclear manner. That the quartet (or triplet structure) typically splits symmetrically in two identical sub-groups around the central line is caused by the heteronuclear 1 H- 13 C J-coupling J H - B - A (or J H-A ).
- the 13 C nuclear spin can either be parallel or antiparallel relative to the field BO, and shifts the quartet structure (triplet structure) away from the central line by ⁇ J H-B - A / 2 ( ⁇ J H - A /2). This measurable spectrum is shown in Fig. 3.
- a homonuclear J-coupling between the X M and the X ⁇ spins in the low-field is, in any case, measurable if the following equation is met.
- the magnetic equivalence between the X m and the X k nucleus is cancelled because the couplings J X-A ⁇ l X - B - A cause unequal splits of the NMR spectral lines of the X nuclei and thus shift the originally equal transition frequencies of X m and X k in a different extent.
- the nucleus X m can then make a magnetic transition, independent from the orientation of the spin of the nucleus X k , when its transition frequency (given by CC ⁇ + Jx m / 2) is sufficiently distant from the transition frequency of the nucleus X k (given by ⁇ H + J ⁇ ⁇ / 2).
- This difference in frequency between the nuclei X m and X k must be larger than the homonuclear J-coupling between X m and X k , because the other nucleus X k is otherwise "swept along" during the magnetic transition of one nucleus X m , and thus the homonuclear J-coupling cannot be measured anymore, as a matter of principle.
- real samples meet these required boundary conditions as a matter of principle, so that various samples can be characterized successfully by the method according to the invention.
- organic molecules are used as a sample, because organic samples in most cases meet the requirements for being able to carry out the method.
- the method is used primarily, when a sample consisting of organic molecules is to be located or characterized.
- the sample is selected such that at least two different heteronuclear J-couplings that meet the equation
- a small exterior magnetic field B 0 within the sense of the invention is present particularly, if it is smaller than 10 "4 T.
- Earth's magnetic field is preferably used as a small external magnetic field, because it is basically particularly homogeneous.
- a particularly homogeneous external magnetic field is advantageous for obtaining good measurement results.
- heteronuclear J- couplings of the sample are measured additionally and used for characterization. On the whole, a sample can thus be characterized completely and in a significantly improved manner compared with the state of the art.
- the sample is pre- magnetized by hyperpolarization of the nuclear spin in one embodiment.
- the signal-to- noise ratio is thus enhanced.
- the spectra can be interpreted.
- a sample can be analyzed by comparing the spectrum with known spectra. If a spectrum that is already known is found in the sample, this implies that the sample has the substance of the known spectrum.
- Figure 5 shows the structure of the homonuclear-coupled spectrum in the low-field for the molecule X M -A-B-X K , namely for a molecule having the structure H 3 -C-B-H 2 for the case of the weak coupling limit ( ⁇ H - ⁇ cI » U H - C O-
- the 13 C nucleus has an occurrence of 1 % in the group A. This structure of the spectrum looks totally different in the low-field than in the high-field.
- the two 1 H- 13 C heteronuclear coupling constants of X M with 13 C and X ⁇ with 13 C are designated J H - A and JH- B - A .
- the 1 H homonuclear coupling constant between X M and X ⁇ with J H-H W H ( ⁇ c ) means the Larmor frequency for the 1 H ( 13 C) nuclei. Since the bond distance between X M and A is smaller than between X ⁇ and A 1 the following applies
- the 1 H-NMR spectrum in the low-field for the case of the weak coupling limit ⁇ H - ⁇ c » JH- A ) shown in Fig. 5 on the one hand consists of a large central line arising from all magnetically equivalent and uncoupled spins X M and X ⁇ , and on the other hand, from two symmetrical multiplet structures whose intensities are 1000 times lower compared to the intensities of the central line.
- the two multiplet structures consist of two quartets and two triplets whose splitting patterns are caused by the homonuclear J-coupling between X 3 and X 2
- the four lines of the quartet structure with intensity ratios of 1 :3:3:1 and the distance J H-H in the frequency space belong to the NMR signal of the two protons of the X 2 -group, which couple in a homonuclear fashion to the 8 possible configurations of the three protons of the X 3 -group.
- the three lines of the triplet structure with the intensity ratios 1 :2:1 and the same distance J H - H belong to the NMR signal of the three protons of the X 3 -group that couple to the 4 possible configurations of the two protons of the X 2 -group in a homonuclear manner.
- the t (or triplet structure) split up symmetrically around the central line into two identical sub-groups is caused by the heteronuclear 1 H- 13 C J-coupling J H - B - A (or J H - A )-
- the 13 C nuclear spin can either be parallel or antiparallel relative to the field B 0 , and shifts the quartet structure (triplet structure) away from the central line by ⁇ J H -B-A / 2 ( ⁇ JH- A /2).
- Fig. 6 shows schematically all homonuclear 1 H- 1 H J-couplings that are observable in the low-field for the more complicated case of the n-butanol in the case of the weak coupling limit.
- the n-butanol molecule consists of 4 carbon atoms in linear arrangement with four possible positions (1-4 in Fig. 6) for the 13 C nuclear spin. If the 13 C nuclear spin is located at position 1 of the butanol, the protons of the CH 2 groups couple to the positions 2 and 3, or of the CH 3 group to the position 4, in a homonuclear fashion to the two protons of the CH 2 group at position 1.
- Triplet pairs with the frequency distances 2 J H -c, 3 J H - C and 4 J H- c arranged symmetrically around the main line result therefrom.
- the number at the top left next to the J-coupling constant indicates the number of chemical bonds between the observed nuclei.
- the individual triplets in turn reflect the homonuclear 1 H- 1 H J-couplings of the CH 2 or the CH 3 groups (position 2-4) with the protons of the CH 2 groups at position 1. Because of the different bond distances three different homonuclear coupling constants 3 J H -H C > 4 JH- H > 5 J H - H exist.
- the plurality of J-coupled lines permits a structural identification of the molecule at hand.
- the J-coupling constants may all be different from the ones shown before. If the 13 C spin is located at position 4, accordingly, three quartet pairs, also with different homonuclear and heteronuclear J-coupling constants, are the result.
- the J-coupling pattern in its entirety is characteristic for the n-butanol molecule. In this manner, a fingerprint of the structure of the n-butanol molecule is obtained, or the fingerprint can be measured according to the invention, in the low-field with the measurement of the heteronuclear and homonuclear network and without knowledge of the chemical shifts. It can be said, generally, that the method according to the invention can also be applied to complex molecules and without complicated high frequency electronic systems, superconducting magnets or elaborate cooling technologies (SQUIDs).
- the spectrometer used ought to operate with the best possible frequency resolution.
- the spectrometer should exhibit a negligible instrumental line broadening, i.e., the widths of the spectral lines are close to the (smallest possible) natural line width.
- the sample to be examined may be enriched with isotopes, that is, for example, with 13 C. Then, the intensity of all homonuclear 1 H- 1 H coupled lines increases by up to two orders of magnitude. This means that the requirements for the sensitivity of the spectrometer are not as high anymore. However, enrichment is a very expensive method and can hardly be carried out in mobile applications (for example, the online analysis of the molecules of petroleum).
- Fig. 7 shows the structure of the molecule tetramethyl silane (TMS) determined according to the method and the allocation of the molecular fragments of the TMS to the general configuration of a molecule X M -A-B-X K .
- TMS molecule tetramethyl silane
- the A group here simply is a 13 C nucleus
- the B group consists of three 12 C atoms bonded to a central Si atom.
- the proposed 2D low-field NMR method can be improved upon even further, if, in one embodiment, a larger magnetic field in the mT range is selected instead of earth's magnetic field.
- a larger magnetic field in the mT range is selected instead of earth's magnetic field.
- the Larmor frequency of the 13 C nuclei is approximately 10 kHz. Because the range of the 13 C chemical shifts is about 100 ppm, the differences of the 13 C resonance frequencies due to different chemical environments are at about 1 Hz.
- the magnetic field Bo 1 mT is very homogeneous
- the mobile structural elucidation of petroleum molecules is possible. Due to the homonuciear and heteronuciear J- couplings, it is possible to distinguish, for example, between heptane, octane, benzole and other petroleum components on-site during the petroleum exploration (already at or in the well) and thus to classify the quality of the petroleum in a most precise manner.
- Chemical reactions that take place, for example, in a technical process under difficult conditions could be characterized by means of the (mobile) NMR according to the method, during the progress of the reaction. This is important, for example, for the online characterization of polymerization reactions during the production of plastics.
- liquid foodstuff products e.g. alcoholic beverages, ethanol, water aromatic compound content, etc.
- quality assurance of liquid foodstuff products is another area of application for the method.
- the homogeneity ⁇ B/B 0 must at least be 1 ppm.
- the current stabilizer (6) must have a temporal stability of better than 1 ppm over 1h. If necessary, the homogeneity must be obtained by using additional shim coils.
- the screening (10) serves the purpose of avoiding changes or distortions of the magnetic field due to environment at the measurement location.
- the desired polarization of the sample (1) to be measured is achieved either by a pre- magnetization in a Halbach magnet (2) or by means of other hyperpolarization technologies (11 ) (SEOP, PHIP, SEOP+SPINOE) with subsequent transport (5) of the sample into the measurement coil (7).
- SEOP a pre- magnetization in a Halbach magnet (2)
- PHIP a hyperpolarization technologies
- SEOP+SPINOE hyperpolarization technologies
- the transport from the Halbach magnet (2) to the measurement coil (7) can be effected in about 100 ms by means of compressed air.
- the sample is excited by the transmitter coil (8) with a DC or AC pulse generated by the NMR electronic system (9). Then, the "free induction decay” (FID) is measured with the receiver coil (7) and the NMR electronic system (9), and recorded by means of a data acquisition system and then evaluated.
- FID free induction decay
- FIG. 10 makes a mobile performance of ultra-high resolution NMR spectroscopy possible.
- a magnetic double screening with a screening factor of at least 5000 as well as a highly sensitive NMR electronic system having a signal-to-noise ratio of several thousand in relation to the uncoupled protons are special features.
- the homo-nuclear J-coupling between the two protons corresponds to the spring with constant D hom between the two masses
- the two groups are magnetically in-equivalent, I ⁇ ⁇ A - ⁇ % B
- the stick spectrum (Fig. 1 1 b) shows the chemical shifts of the two frequencies and the splitting of the shifted 1 H lines by the homo-nuclear J-coupling.
- TMS tetramethylsilane
- TMS tetramethylsilane
- This difference in hetero-nuclear 1 H- 13 C J-coupling constants breaks the magnetic equivalence between the three protons of the 13 CH 3 -group and the nine protons of the three 12 CH 3 -groups. Because in
- the intensity of the smallest quartet line is more than 1 ,000 times smaller than the intensity A 0 of the uncoupled protons
- the reason for the splitting into four lines will be explained in the next section. Due to the homo-nuclear J-coupling to the nine protons of the other three methyl groups, each of these four lines further splits into a multiplet with ten lines, The intensity of the smallest line of the M-N+ 1 multiplet, if the N spins are observed, is / ⁇ M .
- N+1 A 0 x f x (1 /2) x (N/M)/2 M'N .
- a ]Q 2 x 10 "6 .
- Fig, 1 1 Mechanical analogon of J-coupled 1 H-NMR.
- J ⁇ and J H 6 B c are ⁇ 0
- Fig. 13 Experimental and simulated J-coupled Earth's field 'H-spectra of 99% 13 C enriched methanol. All experimental spectra are averages of nine scans.
- the line width of the experimental J-coupled lines is about 0.07 Hz.
- the simulation of the spectrum is shown in the bottom,
- (b) 1 H spectrum (top) measured at T -80° C.
- the homo-nuclear J-coupling between the protons of the OH- and the 13 CH 3 -group is observable due to slow intermolecular ⁇ -exchange.
- the line width of the J-coupled lines is about 0.6 Hz.
- the simulated spectrum of the five- spin system HO- 3 CH 3 is shown in the bottom.
Landscapes
- Physics & Mathematics (AREA)
- Spectroscopy & Molecular Physics (AREA)
- High Energy & Nuclear Physics (AREA)
- General Physics & Mathematics (AREA)
- Condensed Matter Physics & Semiconductors (AREA)
- Health & Medical Sciences (AREA)
- Life Sciences & Earth Sciences (AREA)
- General Health & Medical Sciences (AREA)
- Molecular Biology (AREA)
- Chemical & Material Sciences (AREA)
- Crystallography & Structural Chemistry (AREA)
- Analytical Chemistry (AREA)
- Biochemistry (AREA)
- Immunology (AREA)
- Pathology (AREA)
- Optics & Photonics (AREA)
- Magnetic Resonance Imaging Apparatus (AREA)
- Investigating Or Analysing Biological Materials (AREA)
- Other Investigation Or Analysis Of Materials By Electrical Means (AREA)
Abstract
Description
Claims
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| DE102006029038 | 2006-06-24 | ||
| DE102006032855A DE102006032855A1 (en) | 2006-06-24 | 2006-07-14 | Examination of a sample using nuclear magnetic resonance spectroscopy, comprises measuring a homonuclear J-couplings in a small magnetic field and characterizing the sample using the homonuclear J-coupling |
| US11/681,331 US7541806B2 (en) | 2006-06-24 | 2007-03-02 | Method for molecule examination by NMR spectroscopy |
| PCT/EP2007/054609 WO2007147685A1 (en) | 2006-06-24 | 2007-05-14 | Measurement of homonuclear j-couplings in ultralow magnetic fields by high-resolution nmr spectroscopy |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP2033007A1 true EP2033007A1 (en) | 2009-03-11 |
Family
ID=38721276
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP07729061A Ceased EP2033007A1 (en) | 2006-06-24 | 2007-05-14 | Measurement of homonuclear j-couplings in ultralow magnetic fields by high-resolution nmr spectroscopy |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP2033007A1 (en) |
| JP (1) | JP2009541761A (en) |
| CN (1) | CN101479619B (en) |
| DE (1) | DE102006032855A1 (en) |
| WO (1) | WO2007147685A1 (en) |
Families Citing this family (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8933697B2 (en) * | 2011-12-19 | 2015-01-13 | General Electric Company | Measurement of chemical equilibrium ratio using a magnetic resonance spectroscopy system |
| US9291690B2 (en) * | 2012-06-22 | 2016-03-22 | Chevron U.S.A. Inc. | System and method for determining molecular structures in geological formations |
| DE102014218354B4 (en) | 2014-09-12 | 2016-08-11 | Numares Ag | A method of obtaining information coded in a result of an NMR measurement |
| CN105092629B (en) * | 2015-08-05 | 2017-04-05 | 厦门大学 | A kind of magnetic resonance two dimension spectral method of measurement hydrogen hydrogen J coupling constants |
| CN105588934A (en) * | 2015-12-16 | 2016-05-18 | 中国石油大学(北京) | Detecting method, device and system for petroleum molecular structure |
| CN106770414B (en) * | 2016-11-30 | 2018-09-04 | 吉林大学 | The magnetic resonance device and detection method of oil pollution in a kind of measurement water body |
| CN108680884B (en) * | 2018-04-18 | 2019-10-22 | 厦门大学 | A method for realizing single voxel localized two-dimensional phase-sensitive J-decomposition spectroscopy |
| CN109884107B (en) * | 2019-01-15 | 2020-07-31 | 厦门大学 | Method for measuring same-core indirect coupling network |
| CN113030145A (en) * | 2019-12-09 | 2021-06-25 | 华东师范大学 | Method for selectively detecting target object by using nuclear spin singlet state |
| WO2024073122A1 (en) * | 2022-09-30 | 2024-04-04 | New York University | System, method and computer-accessible medium for diffusion mri without shells |
Family Cites Families (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6815950B2 (en) * | 2002-07-24 | 2004-11-09 | Schlumberger Technology Corporation | J-spectroscopy in the wellbore |
-
2006
- 2006-07-14 DE DE102006032855A patent/DE102006032855A1/en not_active Ceased
-
2007
- 2007-05-14 WO PCT/EP2007/054609 patent/WO2007147685A1/en not_active Ceased
- 2007-05-14 CN CN2007800237392A patent/CN101479619B/en not_active Expired - Fee Related
- 2007-05-14 EP EP07729061A patent/EP2033007A1/en not_active Ceased
- 2007-05-14 JP JP2009517062A patent/JP2009541761A/en not_active Ceased
Non-Patent Citations (2)
| Title |
|---|
| APPELT ET AL: "Analysis of molecular structures by homo- and hetero-nuclear J-coupled NMR in ultra-low field", CHEMICAL PHYSICS LETTERS, ELSEVIER BV, NL, vol. 440, no. 4-6, 22 May 2007 (2007-05-22), pages 308 - 312, XP022088789, ISSN: 0009-2614, DOI: 10.1016/J.CPLETT.2007.03.096 * |
| See also references of WO2007147685A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2007147685A1 (en) | 2007-12-27 |
| CN101479619B (en) | 2013-03-27 |
| CN101479619A (en) | 2009-07-08 |
| DE102006032855A1 (en) | 2007-12-27 |
| JP2009541761A (en) | 2009-11-26 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US7541806B2 (en) | Method for molecule examination by NMR spectroscopy | |
| Blümich et al. | NMR at low magnetic fields | |
| WO2007147685A1 (en) | Measurement of homonuclear j-couplings in ultralow magnetic fields by high-resolution nmr spectroscopy | |
| Ledbetter et al. | Optical detection of NMR J-spectra at zero magnetic field | |
| Samoson et al. | Central transition NMR excitation spectra of half-integer quadrupole nuclei | |
| Zax et al. | Zero field NMR and NQR | |
| Appelt et al. | Paths from weak to strong coupling in NMR | |
| US8461836B2 (en) | Method and device for ex situ magnetic resonance analysis | |
| Appelt et al. | Mobile High Resolution Xenon Nuclear Magnetic Resonance Spectroscopy<? format?> in the Earth’s Magnetic Field | |
| WO2010120783A1 (en) | Detection of j-coupling using atomic magnetometer | |
| Cousin et al. | High-resolution two-field nuclear magnetic resonance spectroscopy | |
| Colell et al. | Fundamental aspects of parahydrogen enhanced low-field nuclear magnetic resonance | |
| Tayler et al. | Nuclear magnetic resonance at millitesla fields using a zero-field spectrometer | |
| Appelt et al. | Phenomena in J-coupled nuclear magnetic resonance spectroscopy in low magnetic fields | |
| Appelt et al. | Analysis of molecular structures by homo-and hetero-nuclear J-coupled NMR in ultra-low field | |
| Sheberstov et al. | Excitation of singlet–triplet coherences in pairs of nearly-equivalent spins | |
| Janssen et al. | Quadrupole nutation nuclear magnetic resonance in solids | |
| Pandey et al. | Proton-detected 3D 15N/1H/1H isotropic/anisotropic/isotropic chemical shift correlation solid-state NMR at 70 kHz MAS | |
| Balbach et al. | High-resolution NMR in inhomogeneous fields | |
| Türschmann et al. | Analysis of parahydrogen polarized spin system in low magnetic fields | |
| EP2270531A1 (en) | Nuclear magnetic resonance spectroscopy using Long-Lived Coherences | |
| Sinha et al. | Triple resonance experiments for aligned sample solid-state NMR of 13C and 15N labeled proteins | |
| Appelt et al. | NMR spectroscopy in the milli-Tesla regime: Measurement of 1H chemical-shift differences below the line width | |
| Lin et al. | Accurate measurements of small J coupling constants under inhomogeneous fields via intermolecular multiple-quantum coherences | |
| Eliav et al. | A new method for suppressing the central transition in I= 3/2 NMR spectra with a demonstration for 23Na in bovine articular cartilage |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| PUAI | Public reference made under article 153(3) epc to a published international application that has entered the european phase |
Free format text: ORIGINAL CODE: 0009012 |
|
| 17P | Request for examination filed |
Effective date: 20081029 |
|
| AK | Designated contracting states |
Kind code of ref document: A1 Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC MT NL PL PT RO SE SI SK TR |
|
| AX | Request for extension of the european patent |
Extension state: AL BA HR MK RS |
|
| RIN1 | Information on inventor provided before grant (corrected) |
Inventor name: HAESING, FRIEDRICH-WOLFGANG Inventor name: SIELING, ULRICH Inventor name: KUEHN, HOLGER Inventor name: APPELT, STEPHAN |
|
| DAX | Request for extension of the european patent (deleted) | ||
| 17Q | First examination report despatched |
Effective date: 20121213 |
|
| APBK | Appeal reference recorded |
Free format text: ORIGINAL CODE: EPIDOSNREFNE |
|
| APBN | Date of receipt of notice of appeal recorded |
Free format text: ORIGINAL CODE: EPIDOSNNOA2E |
|
| APBR | Date of receipt of statement of grounds of appeal recorded |
Free format text: ORIGINAL CODE: EPIDOSNNOA3E |
|
| APAF | Appeal reference modified |
Free format text: ORIGINAL CODE: EPIDOSCREFNE |
|
| REG | Reference to a national code |
Ref country code: DE Ref legal event code: R003 |
|
| APBT | Appeal procedure closed |
Free format text: ORIGINAL CODE: EPIDOSNNOA9E |
|
| STAA | Information on the status of an ep patent application or granted ep patent |
Free format text: STATUS: THE APPLICATION HAS BEEN REFUSED |
|
| 18R | Application refused |
Effective date: 20150903 |