Liao Hsien-Shun, Werner Christian, Slipets Roman, Emil Larsen Peter, Hwang Ing-Shouh, Chang Tien-Jen, Ulrich Danzebrink Hans, Huang Kuang-Yuh, Hwu En-Te
Department of Mechanical Engineering, National Taiwan University, Taipei 10617, Taiwan.
Physikalisch-Technische Bundesanstalt, Bundesallee 100, Braunschweig 38116, Germany.
HardwareX. 2022 May 19;11:e00317. doi: 10.1016/j.ohx.2022.e00317. eCollection 2022 Apr.
Nanoscale positioning has numerous applications in both academia and industry. A growing number of applications require devices with long working distances and nanoscale resolutions. Friction-inertia piezoelectric positioners, which are based on the stick-slip mechanism, achieve both nanometer resolution and centimeter-scale travel. However, the requirements of complex preload mechanism, precision machining, and precise assembly increase the cost of conventional friction-inertia nanopositioners. Herein we present the design of an open-source -axis nanopositioning system. Utilizing a magnet-based stick-slip driving mechanism, the proposed nanopositioner provides several advantages, including sub-nanometer resolution, a payload capacity of up to 12 kg (horizontal), compact size, low cost, and easy assembly; furthermore, the system is adjustment-free. The performance tests validate the precision of the system in both scanning and stepping operation modes. Moreover, the resonant spectra affirm the rigidity and dynamic response of the mechanism. In addition, we demonstrate the practical applications of this nanopositioner in various measurement techniques, including scanning electron microscopy, vibrometry, and atomic force microscopy. Furthermore, we present 11 variations of the nanopositioner designs that are either compatible with ultra-high-vacuum systems and other existing systems, 3D printable, or hacking commercial linear slides.
纳米级定位在学术界和工业界都有众多应用。越来越多的应用需要具有长工作距离和纳米级分辨率的设备。基于粘滑机制的摩擦惯性压电定位器可实现纳米级分辨率和厘米级行程。然而,复杂的预加载机构、精密加工和精确装配的要求增加了传统摩擦惯性纳米定位器的成本。在此,我们展示了一种开源的 -轴纳米定位系统的设计。利用基于磁体的粘滑驱动机制,所提出的纳米定位器具有多个优点,包括亚纳米级分辨率、高达12千克(水平)的负载能力、紧凑的尺寸、低成本和易于组装;此外,该系统无需调整。性能测试验证了该系统在扫描和步进操作模式下的精度。此外,共振光谱证实了该机构的刚度和动态响应。此外,我们展示了这种纳米定位器在各种测量技术中的实际应用,包括扫描电子显微镜、振动测量和原子力显微镜。此外,我们还展示了纳米定位器设计的11种变体,它们要么与超高真空系统和其他现有系统兼容、可3D打印,要么可改装商业线性滑块。