| Literature DB >> 25770532 |
Stefanie Eriksson1, Samo Lasič2, Markus Nilsson3, Carl-Fredrik Westin4, Daniel Topgaard1.
Abstract
We introduce a nuclear magnetic resonance method for quantifying the shape of axially symmetric microscopic diffusion tensors in terms of a new diffusion anisotropy metric, DΔ, which has unique values for oblate, spherical, and prolate tensor shapes. The pulse sequence includes a series of equal-amplitude magnetic field gradient pulse pairs, the directions of which are tailored to give an axially symmetric diffusion-encoding tensor b with variable anisotropy bΔ. Averaging of data acquired for a range of orientations of the symmetry axis of the tensor b renders the method insensitive to the orientation distribution function of the microscopic diffusion tensors. Proof-of-principle experiments are performed on water in polydomain lyotropic liquid crystals with geometries that give rise to microscopic diffusion tensors with oblate, spherical, and prolate shapes. The method could be useful for characterizing the geometry of fluid-filled compartments in porous solids, soft matter, and biological tissues.Entities:
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Year: 2015 PMID: 25770532 PMCID: PMC4359170 DOI: 10.1063/1.4913502
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488