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首页> 外文期刊>Journal of Microscopy >Shear force near-field optical microscope based on Q-controlled bimorph sensor for biological imaging in liquid.
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Shear force near-field optical microscope based on Q-controlled bimorph sensor for biological imaging in liquid.

机译:基于Q控制双压电晶片传感器的剪切力近场光学显微镜,用于液体中的生物成像。

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摘要

Shear force near-field microscopy on biological samples in their physiological environment loses considerable sensitivity and resolution as a result of liquid viscous damping. Using a bimorph-based cantilever sensor incorporating force feedback, as recently developed by us, gives an alternative force detection scheme for biological imaging in liquid. The dynamics and sensitivity of this sensor were theoretically and experimentally discussed. Driving the bimorph cantilever close to its resonance frequency with appropriate force feedback allows us to obtain a quality factor (Q-factor) of up to 10(3) in water, without changing its intrinsic resonance frequency and spring constant. Thus, the force detection sensitivity is improved. Shear force imaging on mouse brain sections and human skin tissues in liquid with an enhanced Q-factor of 410 have shown a high sensitivity and stability. A resolution of about 50 nm has been obtained. The experimental results suggest that the system is reliable and particularlysuitable for biological cell imaging in a liquid environment.
机译:由于液体粘性阻尼的作用,生物样品在其生理环境中的剪切力近场显微镜丧失了相当的灵敏度和分辨率。正如我们最近开发的,使用结合了力反馈的基于双压电晶片的悬臂传感器,可以为液体中的生物成像提供替代的力检测方案。在理论上和实验上讨论了该传感器的动态和灵敏度。通过适当的力反馈将双压电晶片悬臂驱动到接近其共振频率,可以使我们在水中获得高达10(3)的品质因数(Q因子),而无需更改其固有共振频率和弹簧常数。因此,力检测灵敏度提高。 Q值提高到410的液体在小鼠脑部和人体皮肤组织上的剪切力成像显示出很高的灵敏度和稳定性。已经获得约50nm的分辨率。实验结果表明该系统是可靠的,特别适合在液体环境中进行生物细胞成像。

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