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各向同性样品中的伪旋转共振弛豫色散效应

Pseudo rotary resonance relaxation dispersion effects in isotropic samples.

作者信息

Nimerovsky Evgeny, Mehrens Jonas, Andreas Loren B

机构信息

Department of NMR-based Structural Biology, Max Planck Institute for Multidisciplinary Sciences, Am Faßberg 11, Göttingen, Germany.

出版信息

Magn Reson (Gott). 2025 Jun 3;6(1):119-129. doi: 10.5194/mr-6-119-2025. eCollection 2025.

Abstract

Enhanced transverse relaxation near rotary resonance conditions is a well-documented effect for anisotropic solid samples undergoing magic-angle spinning (MAS). We report transverse signal decay associated with rotary resonance conditions for rotating liquids, a surprising observation, since first-order anisotropic interactions are averaged at a much faster timescale compared with the spinning frequency. We report measurements of and signal intensities under spin lock for spinning samples of polybutadiene rubber, polyethylene glycol solution, and 99.96 % . A drastic reduction in spin-lock signal intensities is observed when the spin-lock frequency matches 1 or 2 times the MAS rate. In addition, oscillations of the signal are observed, consistent with a coherent origin of the effect, a pseudo rotary resonance relaxation dispersion (pseudo-RRD). Through simulations, we qualitatively describe the appearance of pseudo-RRD, which can be explained by time dependence caused by sample rotation and an inhomogeneous field, the origin of which is an instrumental imperfection. Consideration of this effect is important for MAS experiments based on rotary resonance conditions and motivates the design of new MAS coils with improved radio frequency (RF)-field homogeneity.

摘要

在旋转共振条件下增强的横向弛豫对于经历魔角旋转(MAS)的各向异性固体样品来说是一个有充分文献记载的效应。我们报道了旋转液体在旋转共振条件下的横向信号衰减,这是一个令人惊讶的发现,因为与旋转频率相比,一级各向异性相互作用在快得多的时间尺度上被平均掉了。我们报道了聚丁二烯橡胶、聚乙二醇溶液和99.96%[此处原文缺失具体物质]的旋转样品在自旋锁定下的[此处原文缺失具体信号强度符号]和信号强度的测量结果。当自旋锁定频率与MAS速率匹配1倍或2倍时,观察到自旋锁定信号强度急剧降低。此外,还观察到信号的振荡,这与该效应的相干起源,即伪旋转共振弛豫色散(pseudo-RRD)一致。通过模拟,我们定性地描述了伪RRD的出现,其可由样品旋转和不均匀场引起的时间依赖性来解释,其起源是仪器缺陷。考虑到这种效应对于基于旋转共振条件的MAS实验很重要,并促使设计具有改进射频(RF)场均匀性的新型MAS线圈。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f72f/12247080/474c691d75ea/mr-6-119-2025-f01.jpg

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