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Implementing Silicon Nanoribbon Field-Effect Transistors as Arrays for Multiple Ion Detection

机译:将硅纳米带场效应晶体管实现为用于多离子检测的阵列

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摘要

Ionic gradients play a crucial role in the physiology of the human body, ranging from metabolism in cells to muscle contractions or brain activities. To monitor these ions, inexpensive, label-free chemical sensing devices are needed. Field-effect transistors (FETs) based on silicon (Si) nanowires or nanoribbons (NRs) have a great potential as future biochemical sensors as they allow for the integration in microscopic devices at low production costs. Integrating NRs in dense arrays on a single chip expands the field of applications to implantable electrodes or multifunctional chemical sensing platforms. Ideally, such a platform is capable of detecting numerous species in a complex analyte. Here, we demonstrate the basis for simultaneous sodium and fluoride ion detection with a single sensor chip consisting of arrays of gold-coated SiNR FETs. A microfluidic system with individual channels allows modifying the NR surfaces with self-assembled monolayers of two types of ion receptors sensitive to sodium and fluoride ions. The functionalization procedure results in a differential setup having active fluoride- and sodium-sensitive NRs together with bare gold control NRs on the same chip. Comparing functionalized NRs with control NRs allows the compensation of non-specific contributions from changes in the background electrolyte concentration and reveals the response to the targeted species.
机译:离子梯度在人体生理中起着至关重要的作用,从细胞的新陈代谢到肌肉的收缩或大脑活动。为了监测这些离子,需要廉价,无标签的化学传感设备。基于硅(Si)纳米线或纳米带(NRs)的场效应晶体管(FET)作为未来的生化传感器具有巨大的潜力,因为它们允许以较低的生产成本集成到微观设备中。在单个芯片上以密集阵列集成NR可以将其应用领域扩展到可植入电极或多功能化学传感平台。理想地,这样的平台能够检测复杂分析物中的多种物质。在这里,我们演示了使用单个传感器芯片同时检测钠和氟离子的基础,该芯片由镀金的SiNR FET阵列组成。具有独立通道的微流体系统允许使用对钠离子和氟离子敏感的两种离子受体的自组装单层修饰NR表面。功能化过程导致在同一芯片上具有活性氟和钠敏感NR以及裸金对照NR的差分设置。将功能化的NR与对照NR比较,可以补偿背景电解质浓度变化带来的非特异性作用,并揭示对目标物质的反应。

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