Normal view MARC view ISBD view

NMR spectroscopy : basic principles, concepts, and applications in chemistry / Harald Günther.

By: Günther, H. (Harald) [author.].
Material type: materialTypeLabelBookPublisher: Weinheim : Wiley-VCH, [2013?]Copyright date: ©2013Edition: Third, completely revised and updated edition.Description: xvi, 718 pages : illustrations (some colour) ; 25 cm.ISBN: 9783527330041 (hardcover); 9783527330003 (paperback).Uniform titles: NMR Spektroskopie. English. Subject(s): Nuclear magnetic resonance spectroscopy | Spectroscopy | Chemistry | BiochemistryDDC classification: 543.6 Online resources: NMR spectroscopy Click here to access full text book
Contents:
TABLE OF CONTENTS PREFACE INTRODUCTION Literature Units and Constants PART I: Basic Principles and Applications THE PHYSICAL BASIS OF THE NUCLEAR MAGNETIC RESONANCE EXPERIMENT The Quantum Mechanical Model for the Isolated Proton Classical Description of the NMR Experiment Experimental Verification of Quantized Angular Momentum and of the Resonance Equation The NMR Experiment on Compact Matter and the Principle of the NMR Spectrometer Magnetic Properties of Nuclei beyond the Proton THE PROTON MAGNETIC RESONANCE SPECTRA OF ORGANIC MOLECULES - CHEMICAL SHIFT AND SPIN - SPIN COUPLING The Chemical Shift Spin - Spin Coupling GENERAL EXPERIMENTAL ASPECTS OF NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY Sample Preparation and Sample Tubes Internal and External Standards; Solvent Effects Tuning the Spectrometer Increasing the Sensitivity Measurement of Spectra at Different Temperatures PROTON CHEMICAL SHIFTS AND SPIN - SPIN COUPLING CONSTANTS AS FUNCTIONS OF STRUCTURE Origin of Proton Chemical Shifts Proton - Proton Spin - Spin Coupling and Chemical Structure THE ANALYSIS OF HIGH-RESOLUTION NUCLEAR MAGNETIC RESONANCE SPECTRA Notation for Spin Systems Quantum Mechanical Formalism The Hamilton Operator for High-Resolution Nuclear Magnetic Resonance Spectroscopy Calculation of Individual Spin Systems THE INFLUENCE OF MOLECULAR SYMMETRY AND CHIRALITY ON PROTON MAGNETIC RESONANCE SPECTRA Spectral Types and Structural Isomerism Influence of Chirality on the NMR Spectrum Analysis of Degenerate Spin Systems by Means of 13C Satellites and H/D Substitution PART II: Advanced Methods and Applications THE PHYSICAL BASIS OF THE NUCLEAR MAGNETIC RESONANCE EXPERIMENT. The NMR Signal by Pulse Excitation Relaxation Effects Pulse Fourier-Transform (FT) NMR Spectroscopy Experimental Aspects of Pulse Fourier-Transform Spectroscopy Double Resonance Experiments TWO-DIMENSIONAL NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY Principles of Two-Dimensional NMR Spectroscopy The Spin Echo Experiment in Modern NMR Spectroscopy Homonuclear Two-Dimensional Spin Echo Spectroscopy: Separation of the Parameters J and d for Proton NMR Spectra The COSY Experiment - Two-Dimensional 1H,1H Shift Correlations The Product Operator Formalism Phase Cycles Gradient Enhanced Spectroscopy Universal Building Blocks for Pulse Sequences Homonuclear Shift Correlation by Double Quantum Selection of AX Systems - the 2D-INADEQUATE Experiment Single-Scan 2D NMR MORE 1D AND 2D NMR EXPERIMENTS: THE NUCLEAR OVERHAUSER EFFECT - POLARIZATION TRANSFER - SPIN LOCK EXPERIMENTS - 3D NMR The Overhauser Effect Polarization Transfer Experiments Rotating Frame Experiments Multidimensional NMR Experiments CARBON-13 NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY Historical Development and the Most Important Areas of Application Experimental Aspects of Carbon-13 Nuclear Magnetic Resonance Spectroscopy Carbon-13 Chemical Shifts Carbon-13 Spin - Spin Coupling Constants Carbon-13 Spin - Lattice Relaxation Rates SELECTED HETERONUCLEI Semimetals and Non-metals with the Exception of Hydrogen and Carbon Main Group Metals Transition Metals INFLUENCE OF DYNAMIC EFFECTS ON NUCLEAR MAGNETIC RESONANCE SPECTRA Exchange of Protons between Positions with Different Larmor Frequencies Internal Dynamics of Organic Molecules Intermolecular Exchange Processes Line Broadening by Fast Relaxing Neighboring Nuclei NUCLEAR MAGNETIC RESONANCE OF PARTIALLY ORIENTED MOLECULES AND SOLID STATE NMR Nuclear Magnetic Resonance of Partially Oriented Molecules High-Resolution Solid State Nuclear Magnetic Resonance Spectroscopy SELECTED TOPICS OF NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY Isotope Effects in Nuclear Magnetic Resonance Nuclear Magnetic Resonance Spectroscopy of Paramagnetic Materials Chemically Induced Dynamic Nuclear Polarization (CIDNP) Diffusion-Controlled Nuclear Magnetic Resonance Spectroscopy - DOSY Unconventional Methods for Sensitivity Enhancement - Hyperpolarization Nuclear Magnetic Resonance in Biochemistry and Medicine INDEX
Summary: “Few good textbooks on NMR Spectroscopy are available at either the undergraduate or graduate levels. For those who want to go beyond elementary organic chemistry but without delving into all the mathematics Friebolin’s book is probably the best among this category.” (Journal of Chemical Education, 5 June 2014) Nuclear magnetic resonance (NMR) spectroscopy is one of the most powerful and widely used techniques in chemical research for investigating structures and dynamics of molecules. Advanced methods can even be utilized for structure determinations of biopolymers, for example proteins or nucleic acids. NMR is also used in medicine for magnetic resonance imaging (MRI). The method is based on spectral lines of different atomic nuclei that are excited when a strong magnetic field and a radiofrequency transmitter are applied. The method is very sensitive to the features of molecular structure because also the neighboring atoms influence the signals from individual nuclei and this is important for determining the 3D-structure of molecules. This new edition of the popular classic has a clear style and a highly practical, mostly non-mathematical approach. Many examples are taken from organic and organometallic chemistry, making this book an invaluable guide to undergraduate and graduate students of organic chemistry, biochemistry, spectroscopy or physical chemistry, and to researchers using this well-established and extremely important technique. Problems and solutions are included.
Tags from this library: No tags from this library for this title. Log in to add tags.
    average rating: 0.0 (0 votes)
Item type Current location Call number Status Date due Barcode Item holds
Books Books Learning Resource Center University of Management and Technology, Sialkot City Campus

 

General Stacks
543.6 GUN-N 2013 12579 (Browse shelf) In transit from Learning Resource Center University of Management and Technology, Sialkot Iqbal Campus to Learning Resource Center University of Management and Technology, Sialkot City Campus since 07/10/2023 12579
Total holds: 0
Browsing Learning Resource Center University of Management and Technology, Sialkot City Campus Shelves , Shelving location: General Stacks Close shelf browser
See Baker & Taylor
See Baker & Taylor
See Baker & Taylor
See Baker & Taylor
See Baker & Taylor
See Baker & Taylor
See Baker & Taylor
543 SKO-F 2014 12574 Fundamentals of analytical chemistry / 543.5 PER-U 1992 12584 UV-VIS Spectroscopy and Its Applications / 543.6 GRO-M 2017 12577 Mass Spectrometry: 543.6 GUN-N 2013 12579 NMR spectroscopy : 547 SOL-S 2016 12544 Organic chemistry. 548.83 ZOL-B 2014 12568 Basic concepts of X-ray diffraction / 612.3 BER-A 2015 12459 Advanced nutrition :

Translation of NMR-Spektroscopie: Grundlagen, Konzepte und Anwendungen der Protonen-und Kohlenstoff-13 Kernresonanz-Spektroscopie in der Chemie.

Includes bibliographical references and index.

TABLE OF CONTENTS
PREFACE

INTRODUCTION
Literature
Units and Constants

PART I: Basic Principles and Applications

THE PHYSICAL BASIS OF THE NUCLEAR MAGNETIC RESONANCE EXPERIMENT
The Quantum Mechanical Model for the Isolated Proton
Classical Description of the NMR Experiment
Experimental Verification of Quantized Angular Momentum and of the Resonance Equation
The NMR Experiment on Compact Matter and the Principle of the NMR Spectrometer
Magnetic Properties of Nuclei beyond the Proton

THE PROTON MAGNETIC RESONANCE SPECTRA OF ORGANIC MOLECULES - CHEMICAL SHIFT AND SPIN -
SPIN COUPLING
The Chemical Shift
Spin -
Spin Coupling

GENERAL EXPERIMENTAL ASPECTS OF NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY
Sample Preparation and Sample Tubes
Internal and External Standards;
Solvent Effects
Tuning the Spectrometer
Increasing the Sensitivity
Measurement of Spectra at Different Temperatures

PROTON CHEMICAL SHIFTS AND SPIN -
SPIN COUPLING CONSTANTS AS FUNCTIONS OF STRUCTURE
Origin of Proton Chemical Shifts
Proton -
Proton Spin -
Spin Coupling and Chemical Structure

THE ANALYSIS OF HIGH-RESOLUTION NUCLEAR MAGNETIC RESONANCE SPECTRA
Notation for Spin Systems
Quantum Mechanical Formalism
The Hamilton Operator for High-Resolution Nuclear Magnetic Resonance Spectroscopy
Calculation of Individual Spin Systems

THE INFLUENCE OF MOLECULAR SYMMETRY AND CHIRALITY ON PROTON MAGNETIC RESONANCE SPECTRA
Spectral Types and Structural Isomerism
Influence of Chirality on the NMR Spectrum
Analysis of Degenerate Spin Systems by Means of 13C Satellites and H/D Substitution

PART II: Advanced Methods and Applications

THE PHYSICAL BASIS OF THE NUCLEAR MAGNETIC RESONANCE EXPERIMENT.
The NMR Signal by Pulse Excitation
Relaxation Effects
Pulse Fourier-Transform (FT) NMR Spectroscopy
Experimental Aspects of Pulse Fourier-Transform Spectroscopy
Double Resonance Experiments

TWO-DIMENSIONAL NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY
Principles of Two-Dimensional NMR Spectroscopy
The Spin Echo Experiment in Modern NMR Spectroscopy
Homonuclear Two-Dimensional Spin Echo Spectroscopy: Separation of the Parameters J and d for Proton NMR Spectra
The COSY Experiment - Two-Dimensional 1H,1H Shift Correlations
The Product Operator Formalism
Phase Cycles
Gradient Enhanced Spectroscopy
Universal Building Blocks for Pulse Sequences
Homonuclear Shift Correlation by Double Quantum Selection of AX Systems - the 2D-INADEQUATE Experiment
Single-Scan 2D NMR

MORE 1D AND 2D NMR EXPERIMENTS: THE NUCLEAR OVERHAUSER EFFECT - POLARIZATION TRANSFER - SPIN LOCK EXPERIMENTS - 3D NMR
The Overhauser Effect
Polarization Transfer Experiments
Rotating Frame Experiments
Multidimensional NMR Experiments

CARBON-13 NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY
Historical Development and the Most Important Areas of Application
Experimental Aspects of Carbon-13 Nuclear Magnetic Resonance Spectroscopy
Carbon-13 Chemical Shifts
Carbon-13 Spin -
Spin Coupling Constants
Carbon-13 Spin -
Lattice Relaxation Rates

SELECTED HETERONUCLEI
Semimetals and Non-metals with the Exception of Hydrogen and Carbon
Main Group Metals
Transition Metals

INFLUENCE OF DYNAMIC EFFECTS ON NUCLEAR MAGNETIC RESONANCE SPECTRA
Exchange of Protons between Positions with Different Larmor Frequencies
Internal Dynamics of Organic Molecules
Intermolecular Exchange Processes
Line Broadening by Fast Relaxing Neighboring Nuclei

NUCLEAR MAGNETIC RESONANCE OF PARTIALLY ORIENTED MOLECULES AND SOLID STATE NMR
Nuclear Magnetic Resonance of Partially Oriented Molecules
High-Resolution Solid State Nuclear Magnetic Resonance Spectroscopy

SELECTED TOPICS OF NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY
Isotope Effects in Nuclear Magnetic Resonance
Nuclear Magnetic Resonance Spectroscopy of Paramagnetic Materials
Chemically Induced Dynamic Nuclear Polarization (CIDNP)
Diffusion-Controlled Nuclear Magnetic Resonance Spectroscopy - DOSY
Unconventional Methods for Sensitivity Enhancement - Hyperpolarization
Nuclear Magnetic Resonance in Biochemistry and Medicine

INDEX

“Few good textbooks on NMR Spectroscopy are available at either the undergraduate or graduate levels. For those who want to go beyond elementary organic chemistry but without delving into all the mathematics Friebolin’s book is probably the best among this category.” (Journal of Chemical Education, 5 June 2014)

Nuclear magnetic resonance (NMR) spectroscopy is one of the most powerful and widely used techniques in chemical research for investigating structures and dynamics of molecules. Advanced methods can even be utilized for structure determinations of biopolymers, for example proteins or nucleic acids. NMR is also used in medicine for magnetic resonance imaging (MRI). The method is based on spectral lines of different atomic nuclei that are excited when a strong magnetic field and a radiofrequency transmitter are applied. The method is very sensitive to the features of molecular structure because also the neighboring atoms influence the signals from individual nuclei and this is
important for determining the 3D-structure of molecules.

This new edition of the popular classic has a clear style and a highly practical, mostly non-mathematical approach. Many examples are taken from organic and organometallic chemistry, making this book an invaluable guide to undergraduate and graduate students of organic chemistry, biochemistry, spectroscopy or physical chemistry, and to researchers using this well-established and extremely important technique. Problems and solutions are included.

There are no comments for this item.

Log in to your account to post a comment.

© Copyright LRC, UMT, Sialkot 2024. All Rights Reserved. if you  have a query contact: lrc@skt.umt.edu.pk

 

Powered by Koha

//