Developing an Optical Microlever for Stable and Unsupported Force Amplification

P. Andrew, A. Raudsepp, V. Nock, D. Fan, M. A. K. Williams, U. Staufer, E. Avci
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引用次数: 0

Abstract

Optical micromachines have the potential to improve the capabilities of optical tweezers by amplifying forces and allowing for indirect handling and probing of specimens. However, systematic design and testing of micromachine performance is still an emerging field. In this work we have designed and tested an unsupported microlever, suitable for general-purpose optical tweezer studies, that demonstrates stable trapping performance and repeatable doubling of applied forces. Stable trapping was ensured by analysing images to monitor focus shift when levers oscillated repeatedly, before the best-performing design was selected for force amplification. This study also shows that direct measurement of trap stiffness using the equipartition theorem appears to be a valid method for measuring applied forces on the spherical handles of microlevers.
用于稳定和无支撑力放大的光学微杠杆的研制
光学微机械有潜力通过放大力和允许间接处理和探测标本来提高光镊的能力。然而,微机械性能的系统设计和测试仍然是一个新兴的领域。在这项工作中,我们设计并测试了一种适用于通用光镊研究的无支撑微杠杆,该杠杆具有稳定的捕获性能和可重复加倍的作用力。在选择最佳设计进行力放大之前,通过分析图像来监测杠杆反复振荡时的焦点位移,以确保稳定捕获。该研究还表明,使用均分定理直接测量陷阱刚度似乎是测量施加在微杠杆球形手柄上的力的有效方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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