| Preface | p. xi |
| About the Authors | p. xiii |
| Introduction | p. 1 |
| The utility of NMR | p. 1 |
| A preview of solid-state NMR spectra | p. 3 |
| The solid state | p. 4 |
| Introduction | p. 4 |
| Symmetry in the crystalline state | p. 4 |
| Effects of crystal structure on NMR | p. 6 |
| Types of solids | p. 9 |
| Polymorphism, solvates, co-crystals & host: guest systems | p. 12 |
| NMR of solids & the periodic table | p. 14 |
| Basic NMR Concepts for Solids | p. 17 |
| Nuclear spin magnetization | p. 17 |
| Tensors | p. 18 |
| Shielding | p. 21 |
| Indirect coupling | p. 24 |
| Dipolar coupling | p. 24 |
| Quadrupolar coupling | p. 28 |
| Magic-angle spinning | p. 32 |
| Relaxation | p. 36 |
| Spin-1/2 Nuclei: A Practical Guide | p. 39 |
| Introduction | p. 39 |
| The vector model & the rotating frame of reference | p. 40 |
| Pulse angle | p. 41 |
| The components of an NMR experiment | p. 44 |
| Recycle delay | p. 44 |
| Acquisition time | p. 47 |
| Receiver gain | p. 47 |
| Spectral width | p. 49 |
| Dead-time | p. 49 |
| Spinning sideband suppression | p. 52 |
| Decoupling | p. 52 |
| Spectral referencing | p. 54 |
| Temperature calibration | p. 56 |
| Cross polarization | p. 58 |
| The cross-polarization experiment | p. 59 |
| Contact time | p. 62 |
| Direct excitation or cross polarization? A summary | p. 66 |
| High-resolution spectra from 1H (& 19F) | p. 66 |
| Quantum Mechanics of Solid-State NMR | p. 71 |
| Introduction | p. 71 |
| The Hamiltonians of NMR | p. 72 |
| Spin operators | p. 73 |
| Secular & non-secular terms | p. 74 |
| Coupling Hamiltonians | p. 77 |
| Radiofrequency & the rotating frame | p. 79 |
| The density matrix | p. 81 |
| Density operator treatments of simple NMR experiments | p. 85 |
| The basic NMR experiment | p. 85 |
| Echoes & coherence pathway diagrams | p. 88 |
| The density matrix for coupled spins | p. 91 |
| Example 1: A dipolar-coupled homonuclear spin pair | p. 91 |
| Example 2: Cross-polarization | p. 95 |
| Euler angles & spherical tensors | p. 97 |
| Magic-angle spinning | p. 99 |
| Additional analytical tools | p. 101 |
| Average Hamiltonian theory | p. 101 |
| An overview of Floquet theory | p. 105 |
| Introduction to irreducible spherical tensor operators | p. 106 |
| Going Further with Spin-1/2 Solid-State NMR | p. 109 |
| Introduction | p. 109 |
| Spin-1/2 NMR at high magnetic fields | p. 109 |
| Advanced heteronuclear decoupling | p. 111 |
| Advanced cross polarization | p. 113 |
| Linewidths in solid-state NMR | p. 115 |
| Exploiting indirect (J) couplings in solids | p. 117 |
| Spectral correlation experiments | p. 120 |
| Basic principles of two-dimensional NMR | p. 120 |
| Transfer of magnetization via dipolar couplings | p. 122 |
| Heteronuclear correlation | p. 123 |
| Homonuclear correlation | p. 127 |
| Homonuclear decoupling | p. 132 |
| Overview of homonuclear decoupling sequences | p. 134 |
| Using correlation experiments for spectral assignment | p. 136 |
| Further applications | p. 138 |
| Labeled systems | p. 138 |
| Quantitative applications | p. 138 |
| Quadrupolar Nuclei | p. 141 |
| Introduction | p. 141 |
| Characteristics of first-order quadrupolar spectra | p. 143 |
| First-order energy levels & spectra | p. 146 |
| Second-order zero-asymmetry cases | p. 150 |
| Transition frequencies | p. 150 |
| Central-transition spectra: Static samples | p. 151 |
| Central-transition spectra: Rapid sample spinning | p. 153 |
| Spectra for cases with non-zero asymmetry: Central transition | p. 155 |
| Recording one-dimensional spectra of quadrupolar nuclei | p. 157 |
| Nutation | p. 159 |
| Manipulating the quadrupolar effect | p. 160 |
| Variable-angle spinning | p. 160 |
| Double rotation | p. 161 |
| Dynamic-angle spinning | p. 162 |
| Multiple quantum magic-angle spinning | p. 163 |
| Satellite transition magic-angle spinning | p. 170 |
| Summary for spectroscopy of half-integer quadrupolar nuclei | p. 173 |
| Spectra for integral spins | p. 174 |
| Relaxation, Exchange & Quantitation | p. 177 |
| Introduction | p. 177 |
| Relaxation | p. 178 |
| The cause of relaxation | p. 178 |
| Proton relaxation times | p. 183 |
| Lineshapes & linewidths for non-spinning samples | p. 186 |
| Relaxation & high-resolution measurements combined | p. 189 |
| Measuring relaxation limes | p. 193 |
| Exchange | p. 196 |
| Positional exchange | p. 196 |
| Hydrogen exchange | p. 199 |
| Reorientation without a change in isotropic chemical shift | p. 201 |
| Diffusive motion | p. 203 |
| "Soft" solids | p. 204 |
| Interference | p. 205 |
| Quantitative NMR | p. 206 |
| Relative intensity | p. 208 |
| Absolute intensity | p. 209 |
| Paramagnetic systems | p. 211 |
| Relaxation effects | p. 212 |
| Shift effects | p. 212 |
| Analysis & Interpretation | p. 215 |
| Introduction | p. 215 |
| Quantitative measurement of anisotropics | p. 215 |
| General | p. 215 |
| Quantitation of powder lineshapes | p. 217 |
| Quantitation of spinning sideband manifolds | p. 218 |
| Single-crystal vs. polycrystalline samples | p. 220 |
| Resolving anisotropy information by isotropic shift | p. 220 |
| Measurement of dipolar couplings | p. 222 |
| Measurement of heteronuclear couplings | p. 222 |
| Measurement of homonuclear couplings | p. 225 |
| Quantifying indirect (J) couplings | p. 227 |
| Tensor interplay | p. 228 |
| Effects of quadrupolar nuclei on spin-1/2 spectra | p. 233 |
| Quantifying relationships between tensors | p. 236 |
| From one-dimensional spectra | p. 237 |
| From correlation spectra | p. 237 |
| Specialized experiments | p. 239 |
| NMR crystallography | p. 239 |
| Chemical examples | p. 240 |
| Computation of NMR parameters | p. 244 |
| Appendices | |
| The Spin Properties of Spin-1/2 Nuclides | p. 247 |
| The Spin Properties of Quadrupolar Nuclides | p. 249 |
| Liouville Space, Relaxation & Exchange | p. 253 |
| Introduction to Liouville space | p. 253 |
| Application to relaxation | p. 254 |
| Application to chemical exchange | p. 256 |
| Introduction to Solid-State NMR Simulation | p. 259 |
| Specifying the spin system | p. 259 |
| Specifying the powder sampling | p. 260 |
| Specifying the pulse sequence | p. 261 |
| Efficiency of calculation | p. 262 |
| Index | p. 265 |
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