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光学增强固态核磁共振波谱学。

Optically Enhanced Solid-State H NMR Spectroscopy.

机构信息

Institut des Sciences et Ingenierie Chimiques, École Polytechnique Fedérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

Institute of Radical Chemistry, Aix-Marseille University, CNRS, ICR, 13013 Marseille, France.

出版信息

J Am Chem Soc. 2023 Jul 12;145(27):14874-14883. doi: 10.1021/jacs.3c03937. Epub 2023 Jun 27.

Abstract

Low sensitivity is the primary limitation to extending nuclear magnetic resonance (NMR) techniques to more advanced chemical and structural studies. Photochemically induced dynamic nuclear polarization (photo-CIDNP) is an NMR hyperpolarization technique where light is used to excite a suitable donor-acceptor system, creating a spin-correlated radical pair whose evolution drives nuclear hyperpolarization. Systems that exhibit photo-CIDNP in solids are not common, and this effect has, up to now, only been observed for C and N nuclei. However, the low gyromagnetic ratio and natural abundance of these nuclei trap the local hyperpolarization in the vicinity of the chromophore and limit the utility for bulk hyperpolarization. Here, we report the first example of optically enhanced solid-state H NMR spectroscopy in the high-field regime. This is achieved via photo-CIDNP of a donor-chromophore-acceptor molecule in a frozen solution at 0.3 T and 85 K, where spontaneous spin diffusion among the abundant strongly coupled H nuclei relays polarization through the whole sample, yielding a 16-fold bulk H signal enhancement under continuous laser irradiation at 450 nm. These findings enable a new strategy for hyperpolarized NMR beyond the current limits of conventional microwave-driven DNP.

摘要

低灵敏度是将核磁共振(NMR)技术扩展到更先进的化学和结构研究的主要限制。光诱导动态核极化(photo-CIDNP)是一种 NMR 极化技术,其中光用于激发合适的供体-受体体系,产生自旋相关的自由基对,其演化驱动核极化。在固体中表现出 photo-CIDNP 的系统并不常见,到目前为止,这种效应仅在 C 和 N 核中观察到。然而,这些核的低磁旋比和自然丰度将局部极化限制在发色团附近,并限制了用于体相极化的用途。在这里,我们报告了在高场中首次实现的光学增强固态 H NMR 光谱的实例。这是通过在 0.3 T 和 85 K 的冷冻溶液中,在供体-发色团-受体分子中进行 photo-CIDNP 来实现的,其中丰富的强耦合 H 核之间的自发自旋扩散通过整个样品传递极化,在 450nm 下连续激光辐照下产生 16 倍的体 H 信号增强。这些发现为超越传统微波驱动 DNP 的当前限制的极化 NMR 提供了一种新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b2b/10347552/bf71db941439/ja3c03937_0002.jpg

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