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Direct-write nanoscale printing of nanogranular tunnelling strain sensors for sub-micrometre cantilevers

机译:用于亚微米悬臂的纳米颗粒隧穿应变传感器的直接写入纳米级印刷

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摘要

The sensitivity and detection speed of cantilever-based mechanical sensors increases drastically through size reduction. The need for such increased performance for high-speed nanocharacterization and bio-sensing, drives their sub-micrometre miniaturization in a variety of research fields. However, existing detection methods of the cantilever motion do not scale down easily, prohibiting further increase in the sensitivity and detection speed. Here we report a nanomechanical sensor readout based on electron co-tunnelling through a nanogranular metal. The sensors can be deposited with lateral dimensions down to tens of nm, allowing the readout of nanoscale cantilevers without constraints on their size, geometry or material. By modifying the inter-granular tunnel-coupling strength, the sensors' conductivity can be tuned by up to four orders of magnitude, to optimize their performance. We show that the nanoscale printed sensors are functional on 500 nm wide cantilevers and that their sensitivity is suited even for demanding applications such as atomic force microscopy.
机译:通过减小尺寸,基于悬臂的机械传感器的灵敏度和检测速度大大提高。对于高速纳米表征和生物传感的这种更高性能的需求,推动了其在许多研究领域中的亚微米微型化。然而,现有的悬臂运动的检测方法不容易按比例缩小,从而阻碍了灵敏度和检测速度的进一步提高。在这里,我们报告了基于通过纳米颗粒金属的电子共同激励的纳米机械传感器读数。传感器的横向尺寸可低至数十纳米,从而可以读取纳米级悬臂,而不受尺寸,几何形状或材料的限制。通过修改颗粒间隧道耦合强度,可以将传感器的电导率调整多达四个数量级,以优化其性能。我们证明了纳米级印刷传感器可在500μnm宽的悬臂上工作,并且其灵敏度甚至适用于要求苛刻的应用,例如原子力显微镜。

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