Encased cantilevers for low-noise force and mass sensing in liquids

D. Ziegler, A. Klaassen, Dara Bahri, D. Chmielewski, A. Nievergelt, F. Mugele, J. Sader, P. Ashby
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引用次数: 10

Abstract

Viscous damping severely limits the performance of resonator based sensing in liquids. We present encased cantilevers that overcome this limitation with a transparent and hydrophobic encasement built around the resonator. Only a few micrometers of the cantilever probe protrude from the encasement and water does not enter the encasement. This maintains high Q-factors and reduces the thermo-mechanical noise levels by over one order of magnitude and reaches minimal detectable forces of 12 fN/·Hz in liquids. These probes expand the frontiers of cantilever based sensing. We discuss their design and fabrication with special focus on squeeze film damping and demonstrate their successful application for quantitative mass sensing of single nanoparticles and gentle Atomic Force Microscopy imaging of soft matter in liquids.
用于液体中低噪声力和质量传感的封闭式悬臂梁
粘性阻尼严重限制了基于谐振器的液体传感性能。我们提出的封闭悬臂克服了这一限制,在谐振器周围建立了透明和疏水的外壳。只有几微米的悬臂探头从外壳伸出,水不会进入外壳。这保持了高q因子,并将热机械噪声水平降低了一个数量级以上,并在液体中达到12 fN/·Hz的最小可检测力。这些探测器拓展了基于悬臂梁的传感的前沿。我们讨论了它们的设计和制造,特别关注挤压膜阻尼,并展示了它们在单纳米颗粒定量质量传感和液体中软物质的温和原子力显微镜成像方面的成功应用。
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