| Literature DB >> 24844396 |
Ricardo Jiménez-Martínez1, Daniel J Kennedy2, Michael Rosenbluh3, Elizabeth A Donley4, Svenja Knappe4, Scott J Seltzer2, Hattie L Ring2, Vikram S Bajaj2, John Kitching4.
Abstract
Optically hyperpolarized (129)Xe gas has become a powerful contrast agent in nuclear magnetic resonance (NMR) spectroscopy and imaging, with applications ranging from studies of the human lung to the targeted detection of biomolecules. Equally attractive is its potential use to enhance the sensitivity of microfluidic NMR experiments, in which small sample volumes yield poor sensitivity. Unfortunately, most (129)Xe polarization systems are large and non-portable. Here we present a microfabricated chip that optically polarizes (129)Xe gas. We have achieved (129)Xe polarizations >0.5% at flow rates of several microlitres per second, compatible with typical microfluidic applications. We employ in situ optical magnetometry to sensitively detect and characterize the (129)Xe polarization at magnetic fields of 1 μT. We construct the device using standard microfabrication techniques, which will facilitate its integration with existing microfluidic platforms. This device may enable the implementation of highly sensitive (129)Xe NMR in compact, low-cost, portable devices.Entities:
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Year: 2014 PMID: 24844396 DOI: 10.1038/ncomms4908
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919