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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/108461


    Title: Characterizing aberration of a pressure-actuated tunable biconvex microlens with a simple spherically-corrected design
    Authors: 傅尹坤;Fuh, Yiin-Kuen;Lin, Ming-Xin;Lee, Shyong
    Contributors: 工學院機械工程學系
    Keywords: Aberration;Biconvex membrane lens;Design engineering;Dynamical systems;Dynamics;Fluid dynamics;Fluid flow;Fluids;Microlens;Spherical aberration;Thickness ratio;Tunable lens;ZEMAX simulation
    Date: 2012-12-01
    Issue Date: 2026-04-23 14:50:33 (UTC+8)
    Publisher: Elsevier Ltd.;Elsevier Ltd
    Abstract: 摘要: A tunable biconvex microlens of 1000μm diameter is micromachined and pressure-actuated for variable-focusing applications. The microlens consists of two thin membranes with reconfigurable shapes: a fluid chamber and the interconnected microchannel. The back focus length tuning range is demonstrated from 35mm to 250mm and zoom ratio of up to seven without any mechanical moving components. Aberration characterization is carried out systematically by the Shack–Hartmann measurements to clarify the potential adverse effect associated with focal length tunability, with particular attention placed on interpretation of the Zernike modes. Experimental results show that spherical mode (Z13) can be significantly degraded from −0.037μm to −0.095μm by injecting DI water of 1.11–4.43μL. A facile and cost-efficient approach has been proposed to compensate spherical aberration based on differential thickness of elastic membranes. The thickness variation for the biconvex microlenses can be manipulated as the difference in deformation contour as well as the resultant surface profile when subjected to uniform applied pressure. Both ZEMAX simulation and experiment are used to validate the design concept and search for the optimal thickness ratio. By injecting the fixed fluid volume of 3.32μL, the optimal thickness ratio of 1:4 can be experimentally obtained and the measured spherical aberration is −0.023μm, or 56% improvement compared with 1:1 thickness ratio of −0.053μm. The proposed microlens is robust and can be used potentially in medical imaging systems, for example, a dynamic environment and adaptive optics. ► A tunable biconvex microlens of 1000μm diameter is micromachined. ► The back focus length tuning range is demonstrated from 35mm to 250mm. ► Zoom ratio of up to seven is achieved without any mechanical moving components. ► A facile design to compensate spherical aberration based on differential thickness. ► Proposed microlens can be used potentially in medical imaging systems.
    出版者: Elsevier Ltd
    出版日期: 2012-12
    出處: Optics and lasers in engineering, 2012-12, Vol.50 (12), p.1677-1682
    資源來源: Elsevier ScienceDirect Journals Complete
    版權: 2012
    識別號: ISSN: 0143-8166
    識別號: EISSN: 1873-0302
    識別號: DOI: 10.1016/j.optlaseng.2012.07.013
    Appears in Collections:[Departmant of Mechanical Engineering ] journal & Dissertation

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