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Article

High-frame-rate liquid crystal phase modulator for augmented reality displays

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Pages 309-315 | Received 26 Feb 2018, Accepted 09 Jul 2018, Published online: 17 Sep 2018

References

  • Li YW, Lin CW, Chen KY, et al. Front-lit LCOS for wearable applications. SID Int Symp Dig Tech Pap. 2014;45(1):234–236.
  • Cuypers D, Smet HD, Calster AV. VAN LCOS microdisplays: a decade of technological evolution. J Disp Technol. 2011;7(3):127–134.
  • Luo Z, Peng F, Chen H, et al. Fast-response liquid crystals for high image quality wearable displays. Opt Mater Express. 2015;5(3):603–610.
  • Maimone A, Georgiou A, Kollin JS. Holographic near-eye displays for virtual and augmented reality. ACM Trans Graph. 2017;36(4):1–16.
  • Matsuda N, Fix A, Lanman D. Focal surface displays. ACM Trans Graph. 2017;36(4):1–14.
  • Sun P, Chang S, Zhang S, et al. Computer-generated holographic near-eye display system based on LCoS phase only modulator. Proc SPIE. 2017;10396:103961J.
  • Chen H, Gou F, Wu ST. Submillisecond-response nematic liquid crystals for augmented reality displays. Opt Mater Express. 2017;7(1):195–201.
  • Xianyu H, Wu ST, Lin CL. Dual frequency liquid crystals: A review. Liq Cryst. 2009;36(6–7):717–726.
  • Peng F, Lee YH, Luo Z, et al. Low voltage blue phase liquid crystal for spatial light modulators. Opt Lett. 2015;40(21):5097–5100.
  • Huang Y, Chen H, Tan G, et al. Optimized blue-phase liquid crystal for field-sequential-color displays. Opt Mater Express. 2017;7(2):641–650.
  • Tan G, Lee YH, Gou F, et al. Review on polymer-stabilized short-pitch cholesteric liquid crystal displays. J Phys D Appl Phys. 2017;50(49):493001.
  • Srivastava K, Chigrinov VG, Kwok HS. Ferroelectric liquid crystals: excellent tool for modern displays and photonics. J Soc Inf Disp. 2015;23(6):253–272.
  • Knust S, Wahle M, Kitzerow HS. Ferroelectric liquid crystals in microcapillaries: observation of different electro-optic switching mechanisms. J Phys Chem B. 2017;121(19):5110–5115.
  • Chien CY, Hsu CJ, Chen YW, et al. Holographic polymer networks formed in liquid crystal phase modulators via a He-Ne laser to achieve ultra-fast optical response. Opt Express. 2016;24(7):7534–7542.
  • Sun J, Wu ST. Recent advances in polymer network liquid crystal spatial light modulators. J Polym Sci, Part B: Polym Phys. 2014;52(3):183–192.
  • Huang Y, He Z, Wu ST. Fast-response liquid crystal phase modulators for augmented reality displays. Opt Express. 2017;25(26):32757–32766.
  • Li J, Yang X, Gan N, et al. The effect of lateral fluorination on the properties of phenyl-tolane liquid crystals. Liq Cryst. 2015;42(3):397–403.
  • An Z, Chen R, Zhao L, et al. Shaanxi normal university. Side fluorine substituent and terminal alkenyl substituent-containing diphenyl acetylene diluents for high-birefringence liquid crystals, and synthesis method thereof. Chinese patent CN 107628932. 2018 Jan 26.
  • Li J, Hu M, Li J, et al. Highly fluorinated liquid crystals with wide nematic phase interval and good solubility. Liq Cryst. 2014;41(12):1783–1790.
  • Song K, Li J, Li J, et al. New terphenyl liquid crystals terminated by 2-chloro-3,3,3-trifluoropropenyl group. Liq Cryst. 2017;44(11):1646–1652.
  • Chen R, An Z, Wang W, et al. Improving UV stability of tolane-liquid crystals in photonic applications by the ortho fluorine substitution. Opt Mater Express. 2016;6(1):97–105.
  • Gauza S, Wang H, Wen CH, et al. High birefringence isothiocyanato tolane liquid crystals. Jpn J Appl Phys. 2003;42(6A):3463–3466.
  • Haller I. Thermodynamic and static properties of liquid crystals. Prog Solid State Chem. 1975;10(2):103–118.
  • Wu ST, Efron U, Hess LD. Birefringence measurements of liquid crystals. Appl Opt. 1984;23(21):3911–3915.
  • Beeson K, Zimmerman S, Livesay W, et al. LED-based light-recycling light sources for projection displays. SID Int Symp Dig Tech Pap. 2006;37(1):1823–1826.
  • Wu ST. Birefringence dispersions of liquid crystals. Phys Rev A. 1986;33(2):1270–1274.
  • Wu ST, Wu CS. Experimental confirmation of Osipov-Terentjev theory on the viscosity of liquid crystals. Phys Rev A. 1990;42(4):2219–2227.
  • Chen R, Jiang Y, Li J, et al. Dielectric and optical anisotropy enhanced by 1,3-dioxolane terminal substitution on tolane-liquid crystals. J Mater Chem C. 2015;3(33):8706–8711.
  • Wu ST. Design of a liquid crystal based tunable electrooptic filter. Appl Opt. 1989;28(1):48–52.
  • Vanbrabant PJM, Beeckman J, Neyts K, et al. Diffraction and fringing field effects in small pixel liquid crystal devices with homeotropic alignment. J Appl Phys. 2010;108:083104.
  • Fan Chiang KH, Wu ST, Chen SH. Fringing-field effects on high-resolution liquid crystal microdisplays. J Display Technol. 2005;1(2):304–313.

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