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3843145433
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For two examples, see: Wolff, E. K.; Griffin, R. G.; Watson, C. J. Chem. Phys. 1977, 66, 5433-5438. Stark, R. E.; Haberkorn, R. A.; Griffin, R. G. J. Chem. Phys. 1978, 68, 1996-97.
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Wolff, E.K.1
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5
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36749117561
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For two examples, see: Wolff, E. K.; Griffin, R. G.; Watson, C. J. Chem. Phys. 1977, 66, 5433-5438. Stark, R. E.; Haberkorn, R. A.; Griffin, R. G. J. Chem. Phys. 1978, 68, 1996-97.
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Stark, R.E.1
Haberkorn, R.A.2
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0009261132
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0000147539
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2H NMR, see: Kennedy, M. A.; Void, R. L.; Void, R. R. J. Magn. Reson. 1991, 92, 320-331.
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Kennedy, M.A.1
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0000745176
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Elleman, D.D.3
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17
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8944229759
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note
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The size of NQCC that can be observed is limited only by the inverse proportionality of the signal:noise ratio to the powder pattern width, assuming frequency-dependent characteristics of the hardware (such as the Q of the NMR probe circuit) are taken into account.
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18
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0000329305
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We ignore the slight asymmetry due to the chemical shift anisotropy of the nitrate group (ca. 4 kHz) described in: Bastow, T. J.; Stuart, S. N. Chem. Phys. Lett. 1991, 180, 305-309.
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Bastow, T.J.1
Stuart, S.N.2
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20
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8944221251
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note
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This analysis, to be published shortly, will aid in understanding potential intensity distortions of powder patterns acquired under RotIsseRIe conditions.
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