高分辨率核磁共振光谱通过芯片上的超极化
James Eills1, William Hale1, Manvendra Sharma1
1School of Chemistry , University of Southampton , Southampton , Hampshire SO17 1BJ , United Kingdom.
Journal of the American Chemical Society
|May 31, 2019
概括
高分辨率的核磁共振 (NMR) 通过对诱导超极化 (PHIP) 和微探测器实现了对微分子分析物的敏感性. 这一突破使微流体设备的敏感检测成为可能, 克服了以前的度限制.
科学领域:
- 分析化学
- 光谱学
- 微流体学
背景情况:
- 由于样本体积小,微流体核磁共振系统具有较高的质量灵敏度.
- 在微流体NMR中检测低于毫米度的分析物具有挑战性.
- 超诱导高极化 (PHIP) 增强了NMR信号的强度.
研究的目的:
- 为了在微流体NMR中获得微分子分析剂度的敏感性.
- 克服当前微流体NMR系统的度限制.
- 将PHIP与微流体NMR集成,以提高检测能力.
主要方法:
- 在微流体芯片上实现对诱导超极化 (PHIP).
- 使用2.5μL检测体积的高灵敏度传输线微探测器.
- 通过膜扩散向溶液中引入气.
主要成果:
- 达到微分子度的敏感度,比更好的检测极限.
- 通过将化反应集成到微流体芯片中来最大限度地减少极化损失.
- 证明了稳定和敏感的系统性能,允许进行定量分析和二维核磁共振实验.
结论:
- 开发的PHIP增强型微流体核磁共振系统显著提高了低度分析物的灵敏度.
- 这种方法克服了微流体核磁共振的关键局限性,使其能够在前所未有的低水平上进行检测.
- 该系统适用于定量分析和先进的NMR技术,如同核和异核二维NMR.
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