School of Applied and Engineering Physics, Cornell University, Ithaca, New York 14853, USA.
Nano Lett. 2010 Jun 9;10(6):2058-63. doi: 10.1021/nl100193g.
Nanomechanical resonators operating in vacuum are capable of detecting and weighing single biomolecules, but their application to the life sciences has been limited by viscous forces that impede their motion in liquid environments. A promising approach to avoid this problem, encapsulating the fluid within a mechanical resonator surrounded by vacuum, has not yet been tried with resonant sensors of mass less than approximately 100 ng, despite predictions that devices with smaller effective mass will have proportionally finer mass resolution. Here, we fabricate and evaluate the performance of doubly clamped beam resonators that contain filled nanofluidic channels and have masses of less than 100 pg. These nanochannel resonators operate at frequencies on the order of 25 MHz and when filled with fluid have quality factors as high as 800, 2 orders of magnitude higher than that of resonators of comparable size and frequency operating in fluid. Fluid density measurements reveal a mass responsivity of 100 Hz/fg and a noise equivalent mass of 2 fg. Our analysis suggests that realistic improvements in the quality factor and frequency stability of nanochannel resonators would render these devices capable of sensing attogram masses from liquid.
在真空中运行的纳米机械谐振器能够检测和称重单个生物分子,但由于粘性力阻碍了它们在液体环境中的运动,其在生命科学中的应用受到限制。一种有前途的方法是将流体封装在由真空包围的机械谐振器中,但这种方法尚未尝试用于质量小于约 100ng 的谐振传感器,尽管有预测称,具有更小有效质量的器件将具有成比例的更精细的质量分辨率。在这里,我们制造并评估了含有填充纳流道的双端固支梁谐振器的性能,其质量小于 100pg。这些纳流道谐振器的工作频率约为 25MHz,当充满流体时,其品质因数高达 800,比在相同尺寸和频率下工作的谐振器高 2 个数量级。流体密度测量显示质量响应为 100Hz/fg,噪声等效质量为 2fg。我们的分析表明,纳流道谐振器的品质因数和频率稳定性的实际提高将使这些器件能够从液体中检测到 attogram 质量。