RASER 自发提高对氢诱导超极化的灵敏度和分辨率

Zeyu Zheng , Qiwei Peng , Huijun Sun , Xinchang Wang , Zhong Chen
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引用次数: 0

摘要

几十年来,提高核磁共振技术的灵敏度一直是核磁共振研究的重点,这为其在化学、生物学和医学成像领域的应用提供了巨大的潜力。对氢诱导极化(PHIP)是一种有效提高核磁共振灵敏度的方法。然而,PHIP中1H信号的放大容易受到热极化态1H NMR信号的干扰。事实证明,采用激光(通过受激发射的射频放大)可以有效地减轻这种干扰,同时可以减小线宽并提高灵敏度。在这项工作中,我们利用PHIP和RASER提高了一系列生物相容性炔基有机酸分子的信噪比(SNR)。增强因子最高的炔基酸首先通过PASADENA(对氢和合成允许显著增强核对准)实验确定。随后,对5-己酸进行超极化激光实验,探索其在不同流量和压力下的信号特性。5-己酸质子信号的信噪比超过15万,与帕萨迪纳市传统的超极化信号相比,信噪比提高了18.62倍,线宽明显收窄至0.06 Hz。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spontaneous increasing of sensitivity and resolution in parahydrogen-induced hyperpolarization by RASER

Spontaneous increasing of sensitivity and resolution in parahydrogen-induced hyperpolarization by RASER
Enhancing the sensitivity of nuclear magnetic resonance (NMR) technology has been the focus of NMR research for decades, which offers the potential to significantly expand its applications in chemistry, biology, and medical imaging. Parahydrogen-induced polarization (PHIP) emerges as a cost-effective approach to substantially enhance the sensitivity of NMR. Nevertheless, the amplification of the 1H signal in PHIP is susceptible to interference from the thermal polarization state 1H NMR signal. Employing RASER (radiofrequency amplification by stimulated emission of radiation) proves effective in mitigating such interference, which can reduce the linewidth and increase the sensitivity at the same time. In this work, we utilized PHIP and RASER to enhance the signal-to-noise ratio (SNR) of a series of biocompatible alkynyl organic acid molecules. The alkynyl acid with the highest enhancement factor was first identified through PASADENA (parahydrogen and synthesis allow dramatically enhanced nuclear alignment) experiments. Subsequently, RASER experiments were carried out through hyperpolarization of 5-hexynoic acid, exploring its signal characteristics under varying flow rates and pressures. The SNR of proton signals of 5-hexynoic acid surpassed 150,000, an 18.62-fold improvement compared with traditional hyperpolarized signals in PASADENA, and a markedly narrowed linewidth of 0.06 Hz.
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来源期刊
Magnetic Resonance Letters
Magnetic Resonance Letters Analytical Chemistry, Spectroscopy, Radiology and Imaging, Biochemistry, Genetics and Molecular Biology (General)
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