In aqueous systems with immobilized macromolecules, including biological tissue, the longitudinal spin relaxation of water protons is primarily induced by exchange-mediated orientational randomization (EMOR) of intra- and intermolecular magnetic dipole-dipole couplings. Starting from the stochastic Liouville equation, we have developed a non-perturbative theory that can describe relaxation by the dipolar EMOR mechanism over the full range of exchange rates, dipole couplings, and Larmor frequencies. Here, we implement the general dipolar EMOR theory for a macromolecule-bound three-spin system, where one, two, or all three spins exchange with the bulk solution phase. In contrast to the previously studied two-spin system with a single dipole c...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
In aqueous systems with immobilized macromolecules, including biological tissues, the longitudinal s...
In complex biological systems (e.g. gels, cross-linked proteins and biological tissues), the longitu...
In complex biological or colloidal samples, magnetic relaxation dispersion (MRD) experiments using t...
In complex biological systems (e.g. gels, cross-linked proteins and biological tissues), the longitu...
The frequency dependence of the longitudinal relaxation rate, known as the magnetic relaxation dispe...
A molecular theory is presented for the field-dependent spin-lattice relaxation time of water in tis...
A theoretical study was made of magnetic field-dependent dipolar relaxation in two- and three-spin s...
An extensive set of water-H magnetic relaxation dispersion (MRD) data are presented for aqueous agar...
The standard theory of NMR relaxation in liquids (with molecular motion described as a classical Bro...
A system of three dipole-coupled spins exhibits a surprisingly intricate relaxation behavior. Follow...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
In aqueous systems with immobilized macromolecules, including biological tissues, the longitudinal s...
In complex biological systems (e.g. gels, cross-linked proteins and biological tissues), the longitu...
In complex biological or colloidal samples, magnetic relaxation dispersion (MRD) experiments using t...
In complex biological systems (e.g. gels, cross-linked proteins and biological tissues), the longitu...
The frequency dependence of the longitudinal relaxation rate, known as the magnetic relaxation dispe...
A molecular theory is presented for the field-dependent spin-lattice relaxation time of water in tis...
A theoretical study was made of magnetic field-dependent dipolar relaxation in two- and three-spin s...
An extensive set of water-H magnetic relaxation dispersion (MRD) data are presented for aqueous agar...
The standard theory of NMR relaxation in liquids (with molecular motion described as a classical Bro...
A system of three dipole-coupled spins exhibits a surprisingly intricate relaxation behavior. Follow...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...
International audienceFor slowly tumbling entities or quasi-rigid lattices, we derive very simple an...