Suter Dieter
Experimental Physics III, TU Dortmund University, 44227 Dortmund, Germany.
Magn Reson (Gott). 2020 Jun 30;1(1):115-139. doi: 10.5194/mr-1-115-2020. eCollection 2020.
The combination of magnetic resonance with laser spectroscopy provides some interesting options for increasing the sensitivity and information content of magnetic resonance. This review covers the basic physics behind the relevant processes, such as angular momentum conservation during absorption and emission. This can be used to enhance the polarization of the spin system by orders of magnitude compared to thermal polarization as well as for detection with sensitivities down to the level of individual spins. These fundamental principles have been used in many different fields. This review summarizes some of the examples in different physical systems, including atomic and molecular systems, dielectric solids composed of rare earth, and transition metal ions and semiconductors.This review was originally written in response to an invitation of "Progress in NMR Spectroscopy" but re-directed to to be accessible to a wide audience. This paper has been reviewed by peers in accordance with the policy of .
磁共振与激光光谱学的结合为提高磁共振的灵敏度和信息含量提供了一些有趣的选择。本综述涵盖了相关过程背后的基本物理原理,例如吸收和发射过程中的角动量守恒。这可用于将自旋系统的极化程度比热极化提高几个数量级,以及用于检测灵敏度低至单个自旋水平的情况。这些基本原理已在许多不同领域得到应用。本综述总结了不同物理系统中的一些例子,包括原子和分子系统、由稀土组成的介电固体、过渡金属离子和半导体。本综述最初是应《核磁共振光谱学进展》的邀请撰写的,但为了让更广泛的读者能够阅读而进行了重新调整。本文已按照相关政策由同行进行了评审。