• Opto-Electronic Engineering
  • Vol. 48, Issue 4, 200381 (2021)
Lv Gang1、2, Yang Wei1、*, Mao Danbo1, Wu Shibin1, and Ren Ge1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.12086/oee.2021.200381 Cite this Article
    Lv Gang, Yang Wei, Mao Danbo, Wu Shibin, Ren Ge. Preparation method for polyimide films with imaging potential[J]. Opto-Electronic Engineering, 2021, 48(4): 200381 Copy Citation Text show less
    References

    [1] Hyde R A. Eyeglass. 1. Very large aperture diffractive telescopes[J]. Appl Opt, 1999, 38(19): 4198–4212.

    [2] Barton I M, Britten J A, Dixit S N, et al. Fabrication of large-aperture lightweight diffractive lenses for use in space[J]. Appl Opt, 2001, 40(4): 447–541.

    [3] Meinel A B, Meinel M P. Large membrane space optics: imagery and aberrations of diffractive and holographic achromatized optical elements of high diffraction order[J]. Opt Eng, 2002, 41(8): 1995–2007.

    [4] Atcheson P D, Stewart C, Domber J, et al. MOIRE: initial demonstration of a transmissive diffractive membrane optic for large lightweight optical telescopes[J]. Proc SPIE, 2012, 8442: 844221.

    [5] Mao D, Lv G, Gao G H, et al. Fabrication of polyimide films with imaging quality using a spin-coating method for potential optical applications[J]. J Polym Eng, 2019, 39(10): 917–925.

    [10] Wang R Q, Zhang Z Y, Guo C, et al. Effects of fabrication errors on diffraction efficiency for a diffractive membrane[J]. Chin Opt Lett, 2016, 14(12): 120501.

    [11] Zhang J, Li M J, Yin G H, et al. Low-cost method of fabricating large-aperture, high efficiency, Fresnel diffractive membrane optic using a modified moiré technique[J]. Chin Opt Lett, 2016, 14(10): 100501.

    [12] Britten J A, Dixit S N, DeBruyckere M, et al. Large-aperture fast multilevel Fresnel zone lenses in glass and ultrathin polymer films for visible and near-infrared imaging applications[J]. Appl Opt, 2014, 53(11): 2312–2316.

    [13] Wang S, Yang G J, Wu S B, et al. Preparation of solution-processable colorless polyamide-imides with extremely low thermal expansion coefficients through an in-situ silylation method for potential space optical applications[J]. e-Polymers, 2016, 16(5): 695–402.

    [14] Ni H J, Liu J G, Wang Z H, et al. A review on colorless and optically transparent polyimide films: Chemistry, process and engineering applications[J]. J Ind Eng Chem, 2015, 28: 16–27.

    [15] Meador M A B, Malow E J, Silva R, et al. Mechanically strong, flexible polyimide aerogels cross-linked with aromatic triamine[J]. ACS Appl Mater Interfaces, 2012, 4(2): 536–544.

    [16] Minton T K, Wright M E, Tomczak S J, et al. Atomic oxygen effects on POSS polyimides in low earth orbit[J]. ACS Appl Mater Interfaces, 2012, 4(2): 492–502.

    [17] Guo C L, Zhang Z Y, Xue D L, et al. High-performance etching of multilevel phase-type Fresnel zone plates with large apertures[J]. Opt Commun, 2018, 407: 227–233.

    [18] Lei X F, Chen Y, Zhang H P, et al. Space survivable polyimides with excellent optical transparency and self-healing properties derived from hyperbranched polysiloxane[J]. ACS Appl Mater Interfaces, 2013, 5(20): 10207–10220.

    Lv Gang, Yang Wei, Mao Danbo, Wu Shibin, Ren Ge. Preparation method for polyimide films with imaging potential[J]. Opto-Electronic Engineering, 2021, 48(4): 200381
    Download Citation