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分子、材料和生物体中激光极化惰性气体的核磁共振。

Nuclear magnetic resonance of laser-polarized noble gases in molecules, materials, and organisms.

作者信息

Goodson Boyd M

机构信息

Materials Sciences Division, Lawrence Berkeley National Laboratory and Department of Chemistry, University of California, Berkeley 94720-1460, USA.

出版信息

J Magn Reson. 2002 Apr;155(2):157-216. doi: 10.1006/jmre.2001.2341.

Abstract

The sensitivity of conventional nuclear magnetic resonance (NMR) techniques is fundamentally limited by the ordinarily low spin polarization achievable in even the strongest NMR magnets. However, by transferring angular momentum from laser light to electronic and nuclear spins, optical pumping methods can increase the nuclear spin polarization of noble gases by several orders of magnitude, thereby greatly enhancing their NMR sensitivity. This review describes the principles and magnetic resonance applications of laser-polarized noble gases. The enormous sensitivity enhancement afforded by optical pumping can be exploited to permit a variety of novel NMR experiments across numerous disciplines. Many such experiments are reviewed, including the void-space imaging of organisms and materials, NMR and MRI of living tissues, probing structure and dynamics of molecules in solution and on surfaces, NMR sensitivity enhancement via polarization transfer, and low-field NMR and MRI.

摘要

传统核磁共振(NMR)技术的灵敏度从根本上受到限制,即使在最强的NMR磁体中,通常也只能实现较低的自旋极化。然而,通过将角动量从激光转移到电子和核自旋上,光泵浦方法可以将惰性气体的核自旋极化提高几个数量级,从而大大增强其NMR灵敏度。本综述描述了激光极化惰性气体的原理及其磁共振应用。光泵浦带来的巨大灵敏度增强可用于在众多学科中开展各种新颖的NMR实验。本文综述了许多此类实验,包括生物体和材料的空隙空间成像、活组织的NMR和MRI、探测溶液和表面分子的结构与动力学、通过极化转移增强NMR灵敏度以及低场NMR和MRI。

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