Advances in Theory of Solid-State Nuclear Magnetic Resonance.

Journal of nature and science Pub Date : 2015-01-01
Eugene S Mananga, Jalil Moghaddasi, Ajaz Sana, Andrew Akinmoladun, Mostafa Sadoqi
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Abstract

Recent advances in theory of solid state nuclear magnetic resonance (NMR) such as Floquet-Magnus expansion and Fer expansion, address alternative methods for solving a time-dependent linear differential equation which is a central problem in quantum physics in general and solid-state NMR in particular. The power and the salient features of these theoretical approaches that are helpful to describe the time evolution of the spin system at all times are presented. This review article presents a broad view of manipulations of spin systems in solid-state NMR, based on milestones theories including the average Hamiltonian theory and the Floquet theory, and the approaches currently developing such as the Floquet-Magnus expansion and the Fer expansion. All these approaches provide procedures to control and describe the spin dynamics in solid-state NMR. Applications of these theoretical methods to stroboscopic and synchronized manipulations, non-synchronized experiments, multiple incommensurated frequencies, magic-angle spinning samples, are illustrated. We also reviewed the propagators of these theories and discussed their convergences. Note that the FME is an extension of the popular Magnus Expansion and Average Hamiltonian Theory. It aims is to bridge the AHT to the Floquet Theorem but in a more concise and efficient formalism. Calculations can then be performed in a finite-dimensional Hilbert space instead of an infinite dimensional space within the so-called Floquet theory. We expected that the FME will provide means for more accurate and efficient spin dynamics simulation and for devising new RF pulse sequence.

固态核磁共振理论研究进展》。
固态核磁共振(NMR)理论的最新进展,如 Floquet-Magnus 扩展和 Fer 扩展,解决了解决与时间相关的线性微分方程的替代方法,这是量子物理学,特别是固态 NMR 的核心问题。文章介绍了这些理论方法的威力和突出特点,它们有助于描述自旋系统在任何时候的时间演化。这篇综述文章基于包括平均哈密顿理论和 Floquet 理论在内的里程碑式理论,以及目前正在发展的 Floquet-Magnus 扩展和 Fer 扩展等方法,对固态 NMR 中的自旋系统操作进行了广泛的介绍。所有这些方法都提供了控制和描述固态 NMR 自旋动力学的程序。我们说明了这些理论方法在频闪和同步操作、非同步实验、多不相容频率、魔角旋转样品中的应用。我们还回顾了这些理论的传播者,并讨论了它们的趋同性。请注意,FME 是流行的马格努斯展开理论和平均哈密顿理论的延伸。它的目的是以一种更简洁、更高效的形式连接平均哈密顿理论和弗洛克定理。这样,计算就可以在有限维的希尔伯特空间中进行,而不是在所谓的 Floquet 理论的无限维空间中进行。我们预计,FME 将为更精确、更高效的自旋动力学模拟和设计新的射频脉冲序列提供手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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