Paul D. Ellis
Environmental Molecular Sciences Laboratory
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Featured researches published by Paul D. Ellis.
Molecular Physics | 1998
Flemming H. Larsen; Hans J. Jakobsen; Paul D. Ellis; Niels Chr. Nielsen
The quadrupole Carr-Purcell-Meiboom-Gill NMR experiment using magic-angle spinning (QCPMG-MAS) is analysed as a means of determining quadrupolar coupling and anisotropic chemical shielding tensors for half-integer (I > 1/2) quadrupolar nuclei with large quadrupole coupling constants (C Q). This is accomplished by numerical simulations and 87Rb NMR experiments wih Rb2SO4 and Rb2CrO4 using different magnetic fields. It is demonstrated that (i) QCPMG-MAS experiments typically provide a sensitivity gain by more than an order of magnitude relative to quadrupolar-echo MAS experiments, (ii) non-secular second-order terms do not affect the spin evolution appreciably, and (iii) the effect of finite RF pulses needs to be considered when 2ω2 Q/(ω0ωRF) > 0.1, where ωQ = 2πC Q/(4I(2I—1)), ωRF is the RF amplitude, and ω0 the Larmor frequency. Using numerical simulations and iterative fitting the magnitudes and relative orientation of 87Rb quadrupolar coupling and chemical shielding tensors for Rb2SO4 and Rb2CrO4 have b...
Chemical Physics Letters | 1998
Flemming H. Larsen; Hans J. Jakobsen; Paul D. Ellis; Niels Chr. Nielsen
Abstract The 2 H quadrupolar Carr–Purcell–Meiboom–Gill (QCPMG) NMR experiment is proposed as a convenient method to obtain detailed information about molecular dynamics in solids. Compared to the quadrupolar-echo (QE) experiment QCPMG offers two advantages. First, a sensitivity enhancement by about an order of magnitude is achieved by splitting the QE spectrum into spin-echo sidebands. Second, the lineshape of the individual sidebands provides detailed information about the molecular dynamics and increases the dynamic range by two orders of magnitude. The 2 H QCPMG method is demonstrated experimentally and numerically using the two-fold flip process in dimethyl sulfone.
Journal of Magnetic Resonance | 1998
Flemming H. Larsen; Hans J. Jakobsen; Paul D. Ellis; Niels Chr. Nielsen
Journal of Magnetic Resonance | 2001
Andrew S. Lipton; Jesse A. Sears; Paul D. Ellis
Journal of the American Chemical Society | 1997
Thomas Vosegaard; Flemming H. Larsen; Hans J. Jakobsen; Paul D. Ellis; Niels Chr. Nielsen
Journal of Magnetic Resonance | 2004
Andrew S. Lipton; Robert W. Heck; Jesse A. Sears; Paul D. Ellis
Journal of Magnetic Resonance | 2000
Kelly A. Keating; James D. Myers; Jeffrey G. Pelton; Raymond A. Bair; David E. Wemmer; Paul D. Ellis
Journal of Magnetic Resonance | 2002
Hans J. Jakobsen; Preben Daugaard; Eigil Hald; D Rice; Eriks Kupče; Paul D. Ellis
Analytical Chemistry | 1995
Jeff M. Koons; Paul D. Ellis
Journal of Catalysis | 1999
Eric Hughes; Jeff M. Koons; Jian-Xin Wang; Paul D. Ellis