サインイン

Nuclear relaxation restores the equilibrium population imbalance and can occur via spin–lattice or spin–spin mechanisms, which are first-order exponential decay processes.

In spin–lattice or longitudinal relaxation, the excited spins exchange energy with the surrounding lattice as they return to the lower energy level. Among several mechanisms that contribute to spin–lattice relaxation, magnetic dipolar interactions are significant. Here, the excited nucleus transfers energy to a nearby magnetic dipole, usually a tumbling proton.

Spin–lattice relaxation occurs to restore the longitudinal magnetization to its equilibrium value and is characterized by the time constant, T1, which indicates the average lifetime of a nucleus in the excited state. T1 is also called the dipolar or dipole–dipole relaxation time and can range from 0.01 to 100 seconds for liquids. The value of T1 depends on the factors such as the type of nucleus, the location of a nucleus within a molecule, the size of the molecule, and temperature.

Transverse relaxation, also called spin–spin relaxation, occurs when precessing nuclei fall out of phase, resulting in magnetization decay. Transverse relaxation is influenced by static dipolar fields and is usually faster than longitudinal relaxation. The relaxation times observed in typical NMR experiments range from 0.1 to 10 seconds. Additionally, the spin-lattice relaxation time, T1, depends on the applied magnetic field, while T2 is independent of it.

While the relaxation process is essential to prevent saturation and obtain a detectable signal, it also affects the intensity of the NMR signals. Generally, the intensity of the NMR signal is affected by T1 relaxation, whereas shorter T2 results in broadened NMR signals.

タグ

Nuclear RelaxationSpin lattice RelaxationSpin spin RelaxationEquilibrium Population ImbalanceLongitudinal MagnetizationMagnetic Dipolar InteractionsT1 Time ConstantTransverse RelaxationNMR SignalsRelaxation TimeMagnetization DecayStatic Dipolar Fields

章から 7:

article

Now Playing

7.9 : Atomic Nuclei: Types of Nuclear Relaxation

Principles of Nuclear Magnetic Resonance

210 閲覧数

article

7.1 : Nuclear Magnetic Resonance (NMR): Overview

Principles of Nuclear Magnetic Resonance

1.7K 閲覧数

article

7.2 : Atomic Nuclei: Nuclear Spin

Principles of Nuclear Magnetic Resonance

1.4K 閲覧数

article

7.3 : Atomic Nuclei: Nuclear Magnetic Moment

Principles of Nuclear Magnetic Resonance

965 閲覧数

article

7.4 : Atomic Nuclei: Nuclear Spin State Overview

Principles of Nuclear Magnetic Resonance

781 閲覧数

article

7.5 : Atomic Nuclei: Nuclear Spin State Population Distribution

Principles of Nuclear Magnetic Resonance

877 閲覧数

article

7.6 : Atomic Nuclei: Larmor Precession Frequency

Principles of Nuclear Magnetic Resonance

947 閲覧数

article

7.7 : Atomic Nuclei: Magnetic Resonance

Principles of Nuclear Magnetic Resonance

581 閲覧数

article

7.8 : Atomic Nuclei: Nuclear Relaxation Processes

Principles of Nuclear Magnetic Resonance

571 閲覧数

article

7.10 : NMR Spectrometers: Overview

Principles of Nuclear Magnetic Resonance

919 閲覧数

article

7.11 : NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences

Principles of Nuclear Magnetic Resonance

664 閲覧数

article

7.12 : NMR Spectrometers: Resolution and Error Correction

Principles of Nuclear Magnetic Resonance

581 閲覧数

article

7.13 : Diamagnetic Shielding of Nuclei: Local Diamagnetic Current

Principles of Nuclear Magnetic Resonance

773 閲覧数

JoVE Logo

個人情報保護方針

利用規約

一般データ保護規則

研究

教育

JoVEについて

Copyright © 2023 MyJoVE Corporation. All rights reserved