论文标题
与原位电化学实现NMR兼容的微流体平台
An NMR-compatible microfluidic platform enabling in situ electrochemistry
论文作者
论文摘要
将微流体设备与核磁共振(NMR)相结合的潜力可以解锁其庞大的样品处理和处理操作空间,以与NMR提供的强大分析使用。从NMR的角度来看,一类特别具有挑战性的综合功能元素是导电结构。金属电极可用于电化学样品相互作用,但它们可能导致严重的NMR光谱降解。在这项研究中,使用模拟和实验验证的组合来识别电极几何形状,就NMR光谱参数而言,该几何形状以及不存在电极的情况。通过将金属轨道放置在微流体通道的侧壁上,我们发现NMR RF激发性能实际上得到了增强,而不会损害$ B_0 $同质性。壳聚糖在微流体平台中的原位沉积作为概念验证证明了电化学过程的NMR表征。
Combining microfluidic devices with nuclear magnetic resonance (NMR) has the potential of unlocking their vast sample handling and processing operation space for use with the powerful analytics provided by NMR. One particularly challenging class of integrated functional elements from the perspective of NMR are conductive structures. Metallic electrodes could be used for electrochemical sample interaction for example, yet they can cause severe NMR spectral degradation. In this study, a combination of simulation and experimental validation was used to identify an electrode geometry that, in terms of NMR spectral parameters, performs as well as for the case when no electrodes are present. By placing the metal tracks in the side-walls of a microfluidic channel, we found that NMR RF excitation performance was actually enhanced, without compromising $B_0$ homogeneity. Monitoring in situ deposition of chitosan in the microfluidic platform is presented as a proof-of-concept demonstration of NMR characterisation of an electrochemical process.