Comprehensive optical monitoring of photopolymer curing for additive manufacturing of diffractive elements

被引:0
|
作者
Haegele, Sebastian [1 ]
Rank, Manuel [2 ]
Terborg, ROLANDA. [1 ]
Sheinrich, Andrea [2 ]
Pruneri, Valerio [1 ,3 ]
机构
[1] Barcelona Inst Sci & Technol, ICFO Inst Ciencies Foton, Castelldefels 08860, Barcelona, Spain
[2] Aalen Univ, Ctr Opt Technol, D-73430 Aalen, Germany
[3] ICREA Inst Catalana Recerca & Estudis Avancats, Barcelona 08010, Spain
来源
OPTICS EXPRESS | 2024年 / 32卷 / 20期
关键词
REFRACTIVE-INDEX CHANGE; FABRICATION; WRITTEN; LENSES;
D O I
10.1364/OE.530967
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Diffractive optical elements (DOE) offer a wide range of possibilities, from beam shaping to augmented reality and neural networks. Additive manufacturing using photopolymerization curing shows great potential for manufacturing customizable DOEs at low cost. To design and fabricate these, it is essential to monitor both the dynamic evolution of the curing process as well as its spatial distribution during and after curing. To this end, we propose an all-optical monitoring platform comprising a "focused line refractive index microscopy" (FLRIM) technique based on total internal reflection at a prism interface and a large field-of-view interferometric imager, more specifically a "lateral-shearing interferometric microscopy" (LIM) technique. The FLRIM enables dynamic in-situ spatio-temporal quantitative measurements of refractive index (RI) during the curing process, while the LIM technique provides quantitative information of 2D structures by measuring the transmitted phase with high sensitivity via multi-angle illumination. An ultraviolet "digital micromirror device" (DMD) projector is used to photopolymerize pixelated 2D structures. By using the proposed monitoring platform, we investigate the resulting photopolymer structures in-situ during several local curing steps, and, additionally, before and after a global post-curing. Besides showing the capabilities of our technology, we additionally demonstrate that there is potential to fabricate DOEs on a single photopolymer by exploiting tunable local RI changes.
引用
收藏
页码:35212 / 35227
页数:16
相关论文
共 50 条
  • [31] A comprehensive evaluation for different post-curing methods used in stereolithography additive manufacturing
    Zhao, Jing
    Yang, Yiran
    Li, Lin
    JOURNAL OF MANUFACTURING PROCESSES, 2020, 56 : 867 - 877
  • [32] Replicating diffractive optical elements on DuPont photopolymer by optical lithography using a HEBS-glass gray-scale mask
    Long, P
    Daschner, W
    Johnson, E
    Lee, SH
    DIFFRACTIVE AND HOLOGRAPHIC DEVICE TECHNOLOGIES AND APPLICATIONS IV, 1997, 3010 : 105 - 110
  • [33] Thermal embossing of mid-infrared diffractive optical elements by use of a self-processing photopolymer master
    Ornelas-Rodriguez, M
    Calixto, S
    Sheng, YL
    Turck, C
    APPLIED OPTICS, 2002, 41 (22) : 4590 - 4595
  • [34] Nonlinear diffractive optical elements
    Manela, Ofer
    Segev, Mordechai
    OPTICS EXPRESS, 2007, 15 (17): : 10863 - 10868
  • [35] Nonlinear Diffractive Optical Elements
    Manela, Ofer
    Segev, Mordechai
    2007 CONFERENCE ON LASERS & ELECTRO-OPTICS/QUANTUM ELECTRONICS AND LASER SCIENCE CONFERENCE (CLEO/QELS 2007), VOLS 1-5, 2007, : 225 - +
  • [36] Diffractive optical elements in glass
    Thoma, C
    Schütte, H
    Vahrenkamp, T
    Kreitlow, H
    GLASS SCIENCE AND TECHNOLOGY, 2003, 76 : 71 - 76
  • [37] Subwavelength Diffractive Optical Elements
    金国藩
    光学与光电技术, 2006, (05) : 21 - 28
  • [38] Hexagonal diffractive optical elements
    Zheng, Yidan
    Fu, Qiang
    Amata, Hadi
    Chakravarthula, Praneeth
    Heide, Felix
    Heidrich, Wolfgang
    OPTICS EXPRESS, 2023, 31 (26): : 43864 - 43876
  • [39] Hexagonal diffractive optical elements
    Zheng, Yidan
    Qiang, F.U.
    Amata, Hadi
    Chakravarthula, Praneeth
    Heide, Felix
    Heidrich, Wolfgang
    Optics Express, 2023, 31 (26): : 43864 - 43876
  • [40] Application of diffractive optical elements
    Gao, Chunlin
    Xin, Qiming
    Guangxue Jishu/Optical Technique, 1995, (06): : 40 - 43