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- W1590447220 abstract "Since its development in the late 1940s, nuclear magnetic resonance (NMR) has emerged as a powerful technique for probing the local field distribution in liquid and solid matter as well as providing important information on spin and vortex dynamics. While significant progress has been achieved in NMR spectroscopy, conventional inductively detected NMR remains essentially a bulk technique that proves to be extremely difficult to scale down to systems of very small sizes. For the most part, NMR remains limited to systems with a total number of nuclear spins present in the sample exceeding ∼1016, hence prohibiting the NMR detection in a wide variety of systems. Recent advances in the engineering, design and fabrication of meso- and nanoscaled materials have resulted in an experimental measurement gap where conventional NMR techniques cannot be utilized because of the “too few spins” problem. For example, a GaAs/AlGaAs semiconductor heterostructure interface ∼30 nm wide has less than 1015 nuclear spins, a quantum dot ∼106–1010 spins and a single carbon nanotube 103 spins. The very few nuclei available in these systems makes traditional NMR measurements extremely difficult, if not totally impossible, unless the NMR detection scheme could be redefined in an entirely new way." @default.
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- W1590447220 date "2009-01-01" @default.
- W1590447220 modified "2023-09-26" @default.
- W1590447220 title "Resistively Detected NMR in GaAs/AlGaAs" @default.
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- W1590447220 doi "https://doi.org/10.1007/978-3-540-79365-6_3" @default.
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