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Moving Liquids with Sound: The Physics of Acoustic Droplet Ejection for Robust Laboratory Automation in Life Sciences

机译:带有声音的液体移动:声学液滴喷射的物理原理,用于生命科学中的可靠实验室自动化

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摘要

Liquid handling instruments for life science applications based on droplet formation with focused acoustic energy or acoustic droplet ejection (ADE) were introduced commercially more than a decade ago. While the idea of moving liquids with sound was known in the 20th century, the development of precise methods for acoustic dispensing to aliquot life science materials in the laboratory began in earnest in the 21st century with the adaptation of the controlled drop on demand acoustic transfer of droplets from high-density microplates for high-throughput screening (HTS) applications. Robust ADE implementations for life science applications achieve excellent accuracy and precision by using acoustics first to sense the liquid characteristics relevant for its transfer, and then to actuate transfer of the liquid with customized application of sound energy to the given well and well fluid in the microplate. This article provides an overview of the physics behind ADE and its central role in both acoustical and rheological aspects of robust implementation of ADE in the life science laboratory and its broad range of ejectable materials.
机译:十多年前,基于聚焦声能或声滴喷射(ADE)的液滴形成的用于生命科学应用的液体处理仪器已在商业上推出。尽管在20世纪人们知道了用声音移动液体的想法,但在21世纪,随着对可控的按需降落的声学传递的适应,适应了在实验室中精确分配用于分配生命科学材料的精确方法的开发。来自高密度微孔板的微滴,用于高通量筛选(HTS)应用。生命科学应用的稳健ADE实现方式可通过以下方式实现出色的精度和精确度:首先使用声学来感知与其转移相关的液体特性,然后通过定制的声能向微孔板中的给定孔和孔液应用定制的驱动流体的转移。 。本文概述了ADE背后的物理原理及其在生命科学实验室中稳健实施ADE及其广泛的可弹出材料在声学和流变学方面的核心作用。

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