Basic Concepts in NMR

Price

$ 995
Basic Concepts in NMR

About Course

Although some familiarity with NMR will be assumed, a comprehensive approach to the fundamental concepts of NMR will be presented using algebra and trigonometry. This course is intensive and examines each of the fundamental concepts in great detail. The lecture begins with signals generated in the rotating frame, carried through block diagrams of a spectrometer console, into the computer and finally represented in terms of a spectrum. Emphasis will be placed on understanding the principles that are embodied in topics such as phase, modulation, quadrature phase detection, A-to-D conversion, aliasing, and the Fourier transform. Proper operating techniques will be described throughout this portion of the course. After the fundamental principles and instrumentation have been covered, these principles will be used in discussions of apodization functions, data treatments, relaxation measurements, NOE's and special decoupling experiments.

Every attempt will be made to present the material on a conceptual rather than a mathematical level, and whenever possible physical pictures will be emphasized. However, some simple mathematics and basic concepts in physics and electricity will be used to describe certain phenomena.

The objective is to provide the student with a coherent and functional grasp of the fundamental concepts of NMR and how they are used. Time will be devoted to investigating the basic ideas conceptually, first non-mathematically, then graphically, and finally mathematically, in an effort to have the student build a usable intuition about these concepts, their connections, and their utility in modern NMR experiments. The student should gain a thorough understanding of the principles upon which all NMR spectrometers operate, and thus be able to more easily and quickly obtain correct spectra. The course is designed to provide the background required to perform some of the more modern experiments.

Course content

videoWelcome Buy Now
videoCourse Book and Notes Buy Now
videoTable of Nuclear Spins Buy Now
videoNuclear Angular Momentum Buy Now
videoNuclear Magnetic Moment Buy Now
videoEnergy Levels in Magnetic Fields, B0 Buy Now
videoLarmor Equation Buy Now
videoBoltzmann Distribution Buy Now
videoClassical Physics Treatment Buy Now
videoMacroscopic Magnetization Vector Buy Now
videoGeneration of NMR Signal Buy Now
videoRelative and Absolute Signal Intensities Buy Now
videoProblem Answers Buy Now
videoMagnetic Fields Around a Wire Carrying a Current Buy Now
videoMagnetic Fields Around a Solenoid Carrying a Current Buy Now
videoExperimental Demonstration of Superconductivity Buy Now
videoShielding Buy Now
videoSweeping Buy Now
videoChemical Shift Anisotropy Buy Now
videoDefinitions of Frequency and Phase Buy Now
videoSignal Phase Buy Now
videoPhase Sensitive Detectors Buy Now
videoProblem: Calculate Phase Sensitive Detector Output Buy Now
videoSignal Detection Buy Now
videoSpectrometer Phase Relationships Buy Now
videoResonance Offset, "Fictitious" Field and the Rotating Frame Buy Now
videoCoil Shapes Buy Now
videoGeneration of B1 Buy Now
videoPhase of Transmitter RF Pulse (B1) Buy Now
videoProblem Answers Buy Now
videoEffect of Phase of Transmitter RF Pulse (B1) Buy Now
videoFID Signal Phase and Spectral Line-Shapes Buy Now
videoPrinciples of Quadrature Phase Detection Buy Now
videoProblem: Achieve QPD by Changing Pulse Phases Buy Now
videoAnswers to Chapter 4 Questions Buy Now
videoModulation Buy Now
videoAmplitude Modulation Buy Now
videoFrequency Modulation Buy Now
videoSingle-Tone Angular Modulation Buy Now
videoSpinning Sidebands Buy Now
videoImpedance Matching Buy Now
videoProbe Schematic Buy Now
videoRinging Buy Now
videoShimming Buy Now
videoProton Sensitivity Test Buy Now
videoSensitivity Problems Buy Now
videoMeasuring the 90-Degree Pulse Width Buy Now
videoTrouble-Shooting Chart Buy Now
videoSample Preparation Buy Now
videoAn NMR Sample Tube Primer Buy Now
videoSuggestions for Use & Handling of NMR Solvents Buy Now
videoTime-averaged Spectra Buy Now
videoWhen Signals and Noise Add to Themselves Buy Now
videoIncrease in S/N Buy Now
videoFourier Transform NMR Buy Now
videoThe Fourier Transform Buy Now
videoThe Fourier Components of an FID Buy Now
videoComplex FID Buy Now
videoComplex Continuous Fourier Transform Buy Now
videoDiscrete FT of a Single FID Buy Now
videoProperties of Odd and Even Functions Buy Now
videoReal Spectra of Infinitely Long Non-Decaying Cosine Signals Buy Now
videoProblems Buy Now
videoThe Decay of an FID Buy Now
videoProblem Answers Buy Now
videoReal Spectra of Infinitely Long Decaying Cosine Signals Buy Now
videoImaginary Spectra of Infinitely Long Decaying Cosine Signals Buy Now
videoProblem Buy Now
videoSummary of Spectral Line Shapes from Various FIDS Buy Now
videoThe Fourier Transform of a DC Pulse Buy Now
videoFT Spectrometer Block Diagram Buy Now
videoPower Distribution as a Function of Pulse Width Buy Now
videoConversion of Some Time Domain Functions to their Frequency Domains Buy Now
videoAcquisition Times and the Appearance of Sinc Side-Lobes (Wiggles) Buy Now
videoLaboratory Experiments to Observe the Manifestations of the Sinc Function Buy Now
videoEffect of Acquisition Time Buy Now
videoZero-Filling Buy Now
videoAnswers to Problems Buy Now
videoBasic Relaxation Concepts Buy Now
videoRelaxation - Can T2 Be Longer Than T1? Buy Now
videoErnst Angle Buy Now
videoNyquist Sampling Theorem Buy Now
videoOptimum PR and PW for Selected Values of T1 Buy Now
videoEffect of Pulse Tip Angle Buy Now
videoOptimum Tip Angle and Relaxation Delay for Quantitative Analysis Buy Now
videoThe Relationship Between Sensitivity and Integral Accuracy Buy Now
videoFolding (Aliasing) Buy Now
videoQPD Aliasing Buy Now
videoEffect of Filter Bandwidth Buy Now
videoEffect of Spectral Width Buy Now
videoEffect of Transmitter Offset Buy Now
videoPhase Correction Buy Now
videoFID Envelopes and Line-shapes Buy Now
videoExponential Multiplication Buy Now
videoEffect of Line Broadening Parameter, LB Buy Now
videoGaussian Function Buy Now
videoThe Gaussian Function for Resolution Enhancement Buy Now
videoTRAF Function Buy Now
videoSpectral Effects of Side Lobes Buy Now
videoEnergy Levels in an AX System Buy Now
videoA-Type Transitions Buy Now
videoX-Type Transitions Buy Now
videoA- and X-Type Transitions Buy Now
videoDefinition, Signs and Simple Theory of Scalar Coupling Buy Now
videoDecoupling Buy Now
videoPamoic Acid - Proton Spectrum Buy Now
videoPomoic Acid - Homodecoupled at 7.9 PPM Buy Now
videoT1 Growth and T2 Decay Buy Now
videoHahn Spin Echo Buy Now
videoCarr-Purcell Train Buy Now
videoCPMG Pulses Buy Now
videoCarr-Purcell-Meiboom-Gill Experiment Buy Now
videoMeasuring T1 Buy Now
videoT1 Spectra Buy Now
videoRelaxation Mechanisms Buy Now
videoDipole-Dipole and Spin Rotation Contributions Buy Now
videoEffect of Motion on Dipole-Dipole Relaxation Buy Now
videoSome Uses of T1 Measurements Buy Now
videoT1 Growth and T2 Decay Buy Now
videoHahn Spin Echo Buy Now
videoCarr-Purcell Train Buy Now
videoCarr-Purcell-Meiboom-Gill Experiment Buy Now
videoMeasuring T1 Buy Now
videoT1 Spectra Buy Now
videoRelaxation Mechanisms Buy Now
videoDipole-Dipole and Spin Rotation Contributions Buy Now
videoEffect of Motion on Dipole-Dipole Relaxation Buy Now
videoSome Uses of T1 Measurements Buy Now
videoElectric Quadrupole Relaxation Buy Now
videoMagnetization Transfer Experiments Buy Now
videoEffect of Paramagnetics Buy Now
videoIntegration Buy Now
videoScalar vs Dipolar Coupling Buy Now
videoNuclear Overhauser Enhancement - NOE Definitions Buy Now
videoDecoupled Spectra without the NOE Buy Now
videoCoupled Spectra with NOE Buy Now
videoPulse Sequence in Gated Decoupling Experiments Buy Now
videoIncomplete NOE's Buy Now
videoMeasuring T1DD Buy Now
videoAssignment of Quaternary Carbons in Benzonitrile Buy Now
videoIntegration Buy Now
videoPamoic Acid Buy Now
videoHow Distance Affects the Homonuclear NOE Buy Now
videoPamoic Acide - NOESY - SSB Processing, Symmetrized Buy Now
Daniel D Traficante

Daniel D Traficante

Emeritus Professor of NMR

Course Instructor

Dr. Traficante obtained his Ph.D. in 1962 from MIT in the field of synthetic organic chemistry. For 10 years he was Director of the NMR Lab at MIT, and then held the same position at Yale University. Serving as the Director of Chemical Instrumentation at the National Science Foundation (NSF),he pioneered multi-nuclear instrumentation. He has built probes, reassembled spectrometers, and developed new software programs to enhance the signal-to-noise ratio and the resolution of NMR spectra. He received a Letter of Commendation from the Chemistry Division when he left the NSF to return to teaching. 
 

At NMR Concepts, his current research in the areas of structure determination, instrumentation and data processing provide him with knowledge and expertise that are applicable to a broad audience. His organic chemistry background, plus his expertise in electronics, gives his lectures a special depth and appreciation for the field. Dr. Traficante is known throughout the world as an outstanding educator.

Mastering NMR Concepts

This bundle includes։

Courses։ 2

Price

$ 2675 $ 2972