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首页> 外文期刊>Cybernetics and systems analysis >Design Considerations for Micro- and Nanopositioning: Leveraging the Latest for Biophysical Applications
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Design Considerations for Micro- and Nanopositioning: Leveraging the Latest for Biophysical Applications

机译:微定位和纳米定位的设计注意事项:利用最新的生物物理应用

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摘要

Biophysical applications ranging from fluorescence microassays to single-molecule microscopy are increasingly dependent on automated nanoscale positional control and stability. A whirlwind of motion-industry innovation has resulted in an array of new motion options offering significant improvements in application performance, reproducibility and throughput. The challenge to leverage these developments depends on researchers, engineers and motion vendors acquiring a common language of specifications and a shared understanding of the challenges posed by application needs.rnTo assist in building this shared understanding, this article reviews today's motion technologies, beginning with a concise review of key principles of motion control focusing on applications. It progresses through illustrations of sensor/encoder technologies and servo techniques. A spectrum of classical and recent motion technologies is explored, from stepper and servo actuation of conventional microscopy stages, to advanced piezo stack nanopositioners capable of picometer precision, to novel ultrasonic resonant piezomotors and piezo-ceramic-based mechanisms capable of high-force positioning over many millimeters while providing resolutions down into the sub-nanometer range.rnA special emphasis is placed on the effects of integrating multiple motion technologies into an application, such as stacking a fine nanopositioner atop a long-travel stage. Examples and data are presented to clarify these issues, including important and insightful new stability measurements taken directly from an advanced optical trapping application. The important topics of software and interfacing are also explored from an applications perspective, since design-and-debugging time, synchronization capabilities and overall throughput are heavily dependent on these often-overlooked aspects of motion system design.rnThe discussion is designed to illuminate specifications-related topics that become increasingly important as precision requirements tighten. Throughout, both traditional and novel techniques and approaches are explored so that readers are left with a solid overview of the state of the art, and an actionable perspective that readies them to discuss and evaluate specifications and vendor capabilities against practical application requirements.
机译:从荧光微分析到单分子显微镜的生物物理应用越来越依赖于自动化的纳米级位置控制和稳定性。运动行业创新的旋风催生了一系列新的运动选项,这些选项可显着改善应用程序性能,可重复性和吞吐量。充分利用这些发展所面临的挑战取决于研究人员,工程师和运动设备供应商掌握通用的规范语言,以及对应用需求带来的挑战的共识。rn为了帮助建立这种共识,本文回顾了当今的运动技术。简要回顾以应用为中心的运动控制的关键原理。它通过说明传感器/编码器技术和伺服技术来进行。探索了一系列经典和最新的运动技术,从常规显微镜工作台的步进和伺服致动,到能够实现皮米级精度的先进压电叠层纳米定位器,再到新型超声共振压电电机和基于压电陶瓷的机构,它们能够在整个表面上进行高力定位它提供了许多毫米的分辨率,同时提供了低于亚纳米范围的分辨率。rn特别强调了将多种运动技术集成到应用程序中的效果,例如在长行程平台上堆叠精细的纳米定位器。给出了示例和数据来阐明这些问题,包括直接从高级光学陷波应用中获取的重要而有见地的新稳定性测量值。还从应用程序的角度探讨了软件和接口的重要主题,因为设计和调试时间,同步能力和总体吞吐量在很大程度上取决于运动系统设计的这些经常被忽视的方面。相关主题随着精度要求的提高而变得越来越重要。在整个过程中,对传统和新颖的技术和方法都进行了探索,以便使读者对现有技术有一个全面的了解,并为他们提供了切实可行的观点,使他们能够根据实际应用需求讨论和评估规格和供应商能力。

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