论文标题

用于实验室芯片应用程序的微流体量子传感平台

Microfluidic quantum sensing platform for lab-on-a-chip applications

论文作者

Allert, Robin D., Bruckmaier, Fleming, Neuling, Nick R., Freire-Moschovitis, Fabian A., Liu, Kristina S., Schrepel, Claudia, Schätzle, Philip, Knittel, Peter, Hermans, Martin, Bucher, Dominik B.

论文摘要

实验室(LOC)应用程序已成为宝贵的物理和生命科学工具。优势源于先进的系统微型化,因此,所需的样品体积要少得多,同时允许复杂的功能,增加的可重复性和高吞吐量。但是,LOC应用需要广泛的传感器小型化来充分利用这些固有的优势。原子尺寸的量子传感器非常有希望弥合此间隙,并实现了纳米至微观上的温度,电场和磁场的测量。然而,到目前为止,这两个学科的技术复杂性都阻碍了LOC系统和量子传感器的毫不妥协的组合。在这里,我们提出了一个完全集成的微流体平台,用于用于固态自旋量子传感器,例如钻石中的氮无效(NV)中心。我们的平台满足了所有技术要求,例如快速旋转操作,实现了完整的量子传感能力,生物相容性以及对任意渠道和芯片几何形状的易于适应性。为了说明LOC系统中量子传感器的巨大潜力,我们在微流体平台中展示了各种基于NV的基于NV中心的传感模式,用于化学分析,从顺磁离子检测到高分辨率显微镜NV-NMR。因此,我们的工作为LOC设备内的新型化学分析能力打开了大门,并在电化学,高吞吐量反应筛选,生物分析,A-A-CHIP或单细胞研究中开放。

Lab-on-a-chip (LOC) applications have emerged as invaluable physical and life sciences tools. The advantages stem from advanced system miniaturization, thus, requiring far less sample volume while allowing for complex functionality, increased reproducibility, and high throughput. However, LOC applications necessitate extensive sensor miniaturization to leverage these inherent advantages fully. Atom-sized quantum sensors are highly promising to bridge this gap and have enabled measurements of temperature, electric and magnetic fields on the nano- to microscale. Nevertheless, the technical complexity of both disciplines has so far impeded an uncompromising combination of LOC systems and quantum sensors. Here, we present a fully integrated microfluidic platform for solid-state spin quantum sensors, such as the nitrogen-vacancy (NV) center in diamond. Our platform fulfills all technical requirements, such as fast spin manipulation, enabling full quantum sensing capabilities, biocompatibility, and easy adaptability to arbitrary channel and chip geometries. To illustrate the vast potential of quantum sensors in LOC systems, we demonstrate various NV center-based sensing modalities for chemical analysis in our microfluidic platform, ranging from paramagnetic ion detection to high-resolution microscale NV-NMR. Consequently, our work opens the door for novel chemical analysis capabilities within LOC devices with applications in electrochemistry, high throughput reaction screening, bioanalytics, organ-on-a-chip, or single-cell studies.

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