Replicative manufacturing of glass optics with functional microstructures

被引:4
作者
Rojacher, Cornelia [1 ]
Grunwald, Tim [1 ]
Bergs, Thomas [2 ]
机构
[1] Fraunhofer Inst Prod Technol, Steinbachstr 17, D-52074 Aachen, Germany
[2] Rhein Westfal TH Aachen, Lab Machine Tools & Prod Engn WZL, Campus Blvd 30, D-52074 Aachen, Germany
来源
SIXTH EUROPEAN SEMINAR ON PRECISION OPTICS MANUFACTURING | 2019年 / 11171卷
关键词
Optics manufacturing precision glass molding; microstructure; infrared; anti-reflection; chalcogenide glass; diffractive optical elements; DOE;
D O I
10.1117/12.2526733
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Microstructuring of glass optics enables a large variety of benefits for miscellaneous fields of application. From an enhancement of the performance of optical systems to the haptic improvement of coverglasses the advantages of structured glass are obvious. Especially in the field of high-precision optics, microstructured optical surfaces can carry out important functions, such as beam shaping in laser systems or the correction of dispersive color alterations. Besides enhancements regarding optics of the visible light spectrum, microstructures can compensate disadvantages of infrared(IR)-transmissive lenses such as chalcogenide glasses. As these optics suffer high transmission losses due to their high refractive index the integration of an anti-reflective (AR) function is necessary. Moth-eye-structures are a promising way to avoid the currently used AR-coatings. So far, microstructures are brought into the lens' surface by lithography mainly The therefore additional processing step follows the previous shaping. An efficient production of the structured components is the key to success for applications aside science and research. The technology precision glass molding (PGM) is able to combine the contradicting aspects of high precision and high volume production. PGM is a replicative manufacturing method that allows the macroscopic molding and the manufacturing of microscopic structures to be carried out simultaneously. Based on a representative PGM process chain, the paper at hand describes differences, challenges and current research results regarding molding microstructures.
引用
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页数:6
相关论文
共 11 条
[1]  
Brinksmeier E., 2013, FABRICATION COMPLEX, P119
[2]  
Dambon O., 2016, ENTWICKLUNG TECHNOLO
[3]   Determining the refractive index dispersion and thickness of hot-pressed chalcogenide thin films from an improved Swanepoel method [J].
Fang, Y. ;
Jayasuriya, D. ;
Furniss, D. ;
Tang, Z. Q. ;
Sojka, L. ;
Markos, C. ;
Sujecki, S. ;
Seddon, A. B. ;
Benson, T. M. .
OPTICAL AND QUANTUM ELECTRONICS, 2017, 49 (07)
[4]  
JENOPTIK AG, 2019, DIFFR OPT EL HIGH PR
[5]   Improved antireflection properties of moth eye mimicking nanopillars on transparent glass: flat antireflection and color tuning [J].
Ji, Seungmuk ;
Park, Joonsik ;
Lim, Hyuneui .
NANOSCALE, 2012, 4 (15) :4603-4610
[6]  
Kaless A., 2006, THESIS, P7
[7]   Micro-structuring of glassy carbon for precision glass molding of binary diffractive optical elements [J].
Prater, Karin ;
Dukwen, Julia ;
Scharf, Toralf ;
Herzig, Hans Peter ;
Ploeger, Sven ;
Hermerschmidt, Andreas .
OPTICAL MATERIALS EXPRESS, 2016, 6 (11) :3407-3416
[8]  
Taylor Hobson Ltd, 2016, SURF PROF
[9]  
TOSHIBA MACHINE CO. LTD, 2019, HIGH PREC OPT GLASS
[10]  
Webb J H, 1946, Patent No. 2410616