Evaluation of nuclear magnetic relaxation dispersion (NMRD) curves obtained by the fast field cycling nuclear magnetic resonance (FFC-NMR) relaxometry technique is a valuable tool for analyzing the microscopic dynamics of condensed matter systems. However, quantitative data analysis involves several conceptual and practical issues. Moving forward from previous literature approaches, we propose a new analysis method, relying on the elaboration of the inverse integral transform of the NMRD curve. Our approach results in a true heuristic method, able to unambiguously individuate the dynamic domains in the system, thereby avoiding the possible introduction of any element of discretion. The analysis of some data sets relevant to real samples sug...
Fast field-cycling (FFC) nuclear magnetic resonance relaxometry is a well-established method to det...
Fast field cycling (FFC) NMR relaxometry is emerging as a powerful tool to investigate physical chem...
In the past three decades, roughly 100 fundamentally different Nuclear Magnetic Resonance (NMR) expe...
Evaluation of nuclear magnetic relaxation dispersion (NMRD) curves obtained by the fast field cyclin...
Regression analysis of the NMRD dispersion curves obtained by the FFC-NMR relaxometric technique inv...
This work was supported by the European Union Horizon 2020 research and innovation programme under g...
Fast-field-cycling (FFC) NMR relaxometry deals with the variation of the spin–lattice relaxation tim...
This thesis focus on the analysis of spin-lattice NMRD relaxation profilesmeasured in various comple...
© 2019 The Royal Society of Chemistry. With the availability of commercial field-cycling (FC) relaxo...
Fast-field-cycling nuclear magnetic resonance (FFC-NMR) is a powerful technique for non-destructivel...
This thesis focuses on the development of inverse methods for nuclear magnetic res- onance (NMR) cor...
Fast Field-Cycling Nuclear Magnetic Resonance relaxometry is a non-destructive technique to investig...
UNLABELLED: Nuclear magnetic resonance (NMR) is a powerful tool for observing the motion of biomolec...
A novel NMR approach allows one to efficiently determine translational diffusion coefficients of mac...
Nuclear magnetic resonance (NMR) is a powerful tool for observing the motion of biomolecules at the ...
Fast field-cycling (FFC) nuclear magnetic resonance relaxometry is a well-established method to det...
Fast field cycling (FFC) NMR relaxometry is emerging as a powerful tool to investigate physical chem...
In the past three decades, roughly 100 fundamentally different Nuclear Magnetic Resonance (NMR) expe...
Evaluation of nuclear magnetic relaxation dispersion (NMRD) curves obtained by the fast field cyclin...
Regression analysis of the NMRD dispersion curves obtained by the FFC-NMR relaxometric technique inv...
This work was supported by the European Union Horizon 2020 research and innovation programme under g...
Fast-field-cycling (FFC) NMR relaxometry deals with the variation of the spin–lattice relaxation tim...
This thesis focus on the analysis of spin-lattice NMRD relaxation profilesmeasured in various comple...
© 2019 The Royal Society of Chemistry. With the availability of commercial field-cycling (FC) relaxo...
Fast-field-cycling nuclear magnetic resonance (FFC-NMR) is a powerful technique for non-destructivel...
This thesis focuses on the development of inverse methods for nuclear magnetic res- onance (NMR) cor...
Fast Field-Cycling Nuclear Magnetic Resonance relaxometry is a non-destructive technique to investig...
UNLABELLED: Nuclear magnetic resonance (NMR) is a powerful tool for observing the motion of biomolec...
A novel NMR approach allows one to efficiently determine translational diffusion coefficients of mac...
Nuclear magnetic resonance (NMR) is a powerful tool for observing the motion of biomolecules at the ...
Fast field-cycling (FFC) nuclear magnetic resonance relaxometry is a well-established method to det...
Fast field cycling (FFC) NMR relaxometry is emerging as a powerful tool to investigate physical chem...
In the past three decades, roughly 100 fundamentally different Nuclear Magnetic Resonance (NMR) expe...